Deck 16: Principles of Reactivity: Chemical Equilibria

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When gaseous carbon monoxide and hydrogen are combined in a sealed vessel and heated they will eventually form an equilibrium mixture of reactants and products according to the balanced chemical equilibrium below.CO(g)+ 3H2(g) <strong>When gaseous carbon monoxide and hydrogen are combined in a sealed vessel and heated they will eventually form an equilibrium mixture of reactants and products according to the balanced chemical equilibrium below.CO(g)+ 3H<sub>2</sub>(g)   CH<sub>4</sub>(g)+ H<sub>2</sub>O(g) In one such reaction 3 moles of one reactant were combined with 1 mole of the other reactant in a fixed volume vessel and heated to 1200 K.Analysis of the reaction mixture at various times gave the results below.Which component of the reaction mixture is represented by curve C?  </strong> A) hydrogen B) carbon monoxide C) either methane or water D) either hydrogen or carbon monoxide E) not enough information to decide <div style=padding-top: 35px> CH4(g)+ H2O(g)
In one such reaction 3 moles of one reactant were combined with 1 mole of the other reactant in a fixed volume vessel and heated to 1200 K.Analysis of the reaction mixture at various times gave the results below.Which component of the reaction mixture is represented by curve C? <strong>When gaseous carbon monoxide and hydrogen are combined in a sealed vessel and heated they will eventually form an equilibrium mixture of reactants and products according to the balanced chemical equilibrium below.CO(g)+ 3H<sub>2</sub>(g)   CH<sub>4</sub>(g)+ H<sub>2</sub>O(g) In one such reaction 3 moles of one reactant were combined with 1 mole of the other reactant in a fixed volume vessel and heated to 1200 K.Analysis of the reaction mixture at various times gave the results below.Which component of the reaction mixture is represented by curve C?  </strong> A) hydrogen B) carbon monoxide C) either methane or water D) either hydrogen or carbon monoxide E) not enough information to decide <div style=padding-top: 35px>

A) hydrogen
B) carbon monoxide
C) either methane or water
D) either hydrogen or carbon monoxide
E) not enough information to decide
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Question
Ozone is formed from oxygen.3 O2(g)  <strong>Ozone is formed from oxygen.3 O<sub>2</sub>(g)   2 O<sub>3</sub>(g) Calculate the value of K<sub>p</sub>,given that K<sub>c</sub> = 2.5  \times 10<sup>-29</sup> at 298 K.(R = 0.08206 L.atm/mol.K)</strong> A) 1.0  \times  10<sup>-30</sup> B) 2.1  \times  10<sup>-30</sup> C) 2.5  \times  10<sup>-29</sup> D) 3.3  \times  10<sup>-28</sup> E) 6.1  \times  10<sup>-28</sup> <div style=padding-top: 35px>  2 O3(g)
Calculate the value of Kp,given that Kc = 2.5 ×\times 10-29 at 298 K.(R = 0.08206 L.atm/mol.K)

A) 1.0 ×\times 10-30
B) 2.1 ×\times 10-30
C) 2.5 ×\times 10-29
D) 3.3 ×\times 10-28
E) 6.1 ×\times 10-28
Question
Write the expression for K for the reaction below.
<strong>Write the expression for K for the reaction below.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>

A) <strong>Write the expression for K for the reaction below.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
B) <strong>Write the expression for K for the reaction below.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
C) <strong>Write the expression for K for the reaction below.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
D) <strong>Write the expression for K for the reaction below.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
E) <strong>Write the expression for K for the reaction below.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
Question
Which of the following statements is/are CORRECT?
1)For a chemical system,if the reaction quotient (Q)is greater than K,reactant must be converted to products to reach equilibrium.
2)For a chemical system at equilibrium,the forward and reverse rates of reaction are equal.
3)For a chemical system at equilibrium,the concentrations of products divided by the concentrations of reactants equals one.

A) 1 only
B) 2 only
C) 3 only
D) 1 and 2
E) 1,2,and 3
Question
For the reaction NO(g)+ ½ O2(g)  <strong>For the reaction NO(g)+ ½ O<sub>2</sub>(g)   NO<sub>2</sub>(g)at 750°C,what is the relationship between K<sub>c</sub> and K<sub>p</sub>?</strong> A) K<sub>c</sub> = K<sub>p</sub> B) K<sub>c</sub> = K<sub>p </sub> \times  (RT)<sup>-½</sup> C) K<sub>c</sub> = K<sub>p</sub> = 1.0 D) K<sub>c</sub> = K<sub>p </sub> \times  (RT)<sup>¾</sup> E) K<sub>c</sub> = K<sub>p </sub> \times  (RT)<sup>½</sup> <div style=padding-top: 35px>  NO2(g)at 750°C,what is the relationship between Kc and Kp?

A) Kc = Kp
B) Kc = Kp ×\times (RT)
C) Kc = Kp = 1.0
D) Kc = Kp ×\times (RT)¾
E) Kc = Kp ×\times (RT)½
Question
Write a balanced chemical equation which corresponds to the following equilibrium constant expression. <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) PbF<sub>2</sub>(aq)   Pb(s)+ F<sub>2</sub>(aq) B) PbF<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq) C) Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq)   PbF<sub>2</sub>(s) D) Pb(s)+ F<sub>2</sub>(aq)   PbF<sub>2</sub>(aq) E) PbF<sup>+</sup>(aq)+ F<sup>-</sup>(aq)   PbF<sub>2</sub>(aq) <div style=padding-top: 35px>

A) PbF2(aq) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) PbF<sub>2</sub>(aq)   Pb(s)+ F<sub>2</sub>(aq) B) PbF<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq) C) Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq)   PbF<sub>2</sub>(s) D) Pb(s)+ F<sub>2</sub>(aq)   PbF<sub>2</sub>(aq) E) PbF<sup>+</sup>(aq)+ F<sup>-</sup>(aq)   PbF<sub>2</sub>(aq) <div style=padding-top: 35px> Pb(s)+ F2(aq)
B) PbF2(s) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) PbF<sub>2</sub>(aq)   Pb(s)+ F<sub>2</sub>(aq) B) PbF<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq) C) Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq)   PbF<sub>2</sub>(s) D) Pb(s)+ F<sub>2</sub>(aq)   PbF<sub>2</sub>(aq) E) PbF<sup>+</sup>(aq)+ F<sup>-</sup>(aq)   PbF<sub>2</sub>(aq) <div style=padding-top: 35px> Pb2+(aq)+ 2 F-(aq)
C) Pb2+(aq)+ 2 F-(aq) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) PbF<sub>2</sub>(aq)   Pb(s)+ F<sub>2</sub>(aq) B) PbF<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq) C) Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq)   PbF<sub>2</sub>(s) D) Pb(s)+ F<sub>2</sub>(aq)   PbF<sub>2</sub>(aq) E) PbF<sup>+</sup>(aq)+ F<sup>-</sup>(aq)   PbF<sub>2</sub>(aq) <div style=padding-top: 35px> PbF2(s)
D) Pb(s)+ F2(aq) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) PbF<sub>2</sub>(aq)   Pb(s)+ F<sub>2</sub>(aq) B) PbF<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq) C) Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq)   PbF<sub>2</sub>(s) D) Pb(s)+ F<sub>2</sub>(aq)   PbF<sub>2</sub>(aq) E) PbF<sup>+</sup>(aq)+ F<sup>-</sup>(aq)   PbF<sub>2</sub>(aq) <div style=padding-top: 35px> PbF2(aq)
E) PbF+(aq)+ F-(aq) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) PbF<sub>2</sub>(aq)   Pb(s)+ F<sub>2</sub>(aq) B) PbF<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq) C) Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq)   PbF<sub>2</sub>(s) D) Pb(s)+ F<sub>2</sub>(aq)   PbF<sub>2</sub>(aq) E) PbF<sup>+</sup>(aq)+ F<sup>-</sup>(aq)   PbF<sub>2</sub>(aq) <div style=padding-top: 35px> PbF2(aq)
Question
For which one of the following reactions does Kp equal Kc?

A) 2 CO2(g) <strong>For which one of the following reactions does K<sub>p</sub> equal K<sub>c</sub>?</strong> A) 2 CO<sub>2</sub>(g)   2 CO(g)+ O<sub>2</sub>(g) B) CH<sub>4</sub>(g)+ 2 O<sub>2</sub>(g)   CO<sub>2</sub>(g)+ 2 H<sub>2</sub>O(g) C) C(s)+ H<sub>2</sub>O(g)   H<sub>2</sub>(g)+ CO(g) D) NH<sub>3</sub>(g)   3/2 H<sub>2</sub>(g)+ 1/2 N<sub>2</sub>(g) E) 2 O<sub>3</sub>(g)   3 O<sub>2</sub>(g) <div style=padding-top: 35px> 2 CO(g)+ O2(g)
B) CH4(g)+ 2 O2(g) <strong>For which one of the following reactions does K<sub>p</sub> equal K<sub>c</sub>?</strong> A) 2 CO<sub>2</sub>(g)   2 CO(g)+ O<sub>2</sub>(g) B) CH<sub>4</sub>(g)+ 2 O<sub>2</sub>(g)   CO<sub>2</sub>(g)+ 2 H<sub>2</sub>O(g) C) C(s)+ H<sub>2</sub>O(g)   H<sub>2</sub>(g)+ CO(g) D) NH<sub>3</sub>(g)   3/2 H<sub>2</sub>(g)+ 1/2 N<sub>2</sub>(g) E) 2 O<sub>3</sub>(g)   3 O<sub>2</sub>(g) <div style=padding-top: 35px> CO2(g)+ 2 H2O(g)
C) C(s)+ H2O(g) <strong>For which one of the following reactions does K<sub>p</sub> equal K<sub>c</sub>?</strong> A) 2 CO<sub>2</sub>(g)   2 CO(g)+ O<sub>2</sub>(g) B) CH<sub>4</sub>(g)+ 2 O<sub>2</sub>(g)   CO<sub>2</sub>(g)+ 2 H<sub>2</sub>O(g) C) C(s)+ H<sub>2</sub>O(g)   H<sub>2</sub>(g)+ CO(g) D) NH<sub>3</sub>(g)   3/2 H<sub>2</sub>(g)+ 1/2 N<sub>2</sub>(g) E) 2 O<sub>3</sub>(g)   3 O<sub>2</sub>(g) <div style=padding-top: 35px> H2(g)+ CO(g)
D) NH3(g) <strong>For which one of the following reactions does K<sub>p</sub> equal K<sub>c</sub>?</strong> A) 2 CO<sub>2</sub>(g)   2 CO(g)+ O<sub>2</sub>(g) B) CH<sub>4</sub>(g)+ 2 O<sub>2</sub>(g)   CO<sub>2</sub>(g)+ 2 H<sub>2</sub>O(g) C) C(s)+ H<sub>2</sub>O(g)   H<sub>2</sub>(g)+ CO(g) D) NH<sub>3</sub>(g)   3/2 H<sub>2</sub>(g)+ 1/2 N<sub>2</sub>(g) E) 2 O<sub>3</sub>(g)   3 O<sub>2</sub>(g) <div style=padding-top: 35px> 3/2 H2(g)+ 1/2 N2(g)
E) 2 O3(g) <strong>For which one of the following reactions does K<sub>p</sub> equal K<sub>c</sub>?</strong> A) 2 CO<sub>2</sub>(g)   2 CO(g)+ O<sub>2</sub>(g) B) CH<sub>4</sub>(g)+ 2 O<sub>2</sub>(g)   CO<sub>2</sub>(g)+ 2 H<sub>2</sub>O(g) C) C(s)+ H<sub>2</sub>O(g)   H<sub>2</sub>(g)+ CO(g) D) NH<sub>3</sub>(g)   3/2 H<sub>2</sub>(g)+ 1/2 N<sub>2</sub>(g) E) 2 O<sub>3</sub>(g)   3 O<sub>2</sub>(g) <div style=padding-top: 35px> 3 O2(g)
Question
What is the Kc expression for the following equilibrium?
<strong>What is the K<sub>c</sub> expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>

A) <strong>What is the K<sub>c</sub> expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
B) <strong>What is the K<sub>c</sub> expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
C) <strong>What is the K<sub>c</sub> expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
D) <strong>What is the K<sub>c</sub> expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
E) <strong>What is the K<sub>c</sub> expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
Question
Write the expression for Kp for the reaction below.
<strong>Write the expression for K<sub>p</sub> for the reaction below.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>

A) <strong>Write the expression for K<sub>p</sub> for the reaction below.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
B) <strong>Write the expression for K<sub>p</sub> for the reaction below.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
C) <strong>Write the expression for K<sub>p</sub> for the reaction below.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
D) <strong>Write the expression for K<sub>p</sub> for the reaction below.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
E) <strong>Write the expression for K<sub>p</sub> for the reaction below.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
Question
Which expression correctly describes the equilibrium constant Kc for the following reaction?
<strong>Which expression correctly describes the equilibrium constant K<sub>c</sub> for the following reaction?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>

A) <strong>Which expression correctly describes the equilibrium constant K<sub>c</sub> for the following reaction?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
B) <strong>Which expression correctly describes the equilibrium constant K<sub>c</sub> for the following reaction?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
C) <strong>Which expression correctly describes the equilibrium constant K<sub>c</sub> for the following reaction?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
D) <strong>Which expression correctly describes the equilibrium constant K<sub>c</sub> for the following reaction?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
E) <strong>Which expression correctly describes the equilibrium constant K<sub>c</sub> for the following reaction?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
Question
What balanced equation is the following equilibrium expression derived from? <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px>

A) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> H2(g)+ <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> I2(g) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> HI(g)
B) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> HI(g) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> H2(g)+ <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> I2(g)
C) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> H2(aq)+ <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> I2(aq) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> HI(aq)
D) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> HI(aq) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> H2(aq)+ <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> I2(aq)
E) 2HI(g) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <div style=padding-top: 35px> H2(g)+ I2(g)
Question
Which of the following statements is/are CORRECT?
1)Product concentrations appear in the numerator of an equilibrium constant expression.
2)A reaction favors the formation of products if K >> 1.
3)Stoichiometric coefficients are used as exponents in an equilibrium constant expression.

A) 1 only
B) 2 only
C) 3 only
D) 2 and 3
E) 1,2,and 3
Question
For which of the following equilibria does Kc = Kp?

A) N2(g)+ 3H2(g) <strong>For which of the following equilibria does K<sub>c</sub> = K<sub>p</sub>?</strong> A) N<sub>2</sub>(g)+ 3H<sub>2</sub>(g)   2NH<sub>3</sub>(g) B) CO(g)+ H<sub>2</sub>O(g)   CO<sub>2</sub>(g)+ H<sub>2</sub>(g) C) CO(g)+ 3H<sub>2</sub>(g)   CH<sub>4</sub>(g)+ H<sub>2</sub>O(g) D) CaO(s)+ CO<sub>2</sub>(g)   CaCO<sub>3</sub>(s) E) HBr(g)   ½H<sub>2</sub>(g)+ ½Br<sub>2</sub>(l) <div style=padding-top: 35px> 2NH3(g)
B) CO(g)+ H2O(g) <strong>For which of the following equilibria does K<sub>c</sub> = K<sub>p</sub>?</strong> A) N<sub>2</sub>(g)+ 3H<sub>2</sub>(g)   2NH<sub>3</sub>(g) B) CO(g)+ H<sub>2</sub>O(g)   CO<sub>2</sub>(g)+ H<sub>2</sub>(g) C) CO(g)+ 3H<sub>2</sub>(g)   CH<sub>4</sub>(g)+ H<sub>2</sub>O(g) D) CaO(s)+ CO<sub>2</sub>(g)   CaCO<sub>3</sub>(s) E) HBr(g)   ½H<sub>2</sub>(g)+ ½Br<sub>2</sub>(l) <div style=padding-top: 35px> CO2(g)+ H2(g)
C) CO(g)+ 3H2(g) <strong>For which of the following equilibria does K<sub>c</sub> = K<sub>p</sub>?</strong> A) N<sub>2</sub>(g)+ 3H<sub>2</sub>(g)   2NH<sub>3</sub>(g) B) CO(g)+ H<sub>2</sub>O(g)   CO<sub>2</sub>(g)+ H<sub>2</sub>(g) C) CO(g)+ 3H<sub>2</sub>(g)   CH<sub>4</sub>(g)+ H<sub>2</sub>O(g) D) CaO(s)+ CO<sub>2</sub>(g)   CaCO<sub>3</sub>(s) E) HBr(g)   ½H<sub>2</sub>(g)+ ½Br<sub>2</sub>(l) <div style=padding-top: 35px> CH4(g)+ H2O(g)
D) CaO(s)+ CO2(g) <strong>For which of the following equilibria does K<sub>c</sub> = K<sub>p</sub>?</strong> A) N<sub>2</sub>(g)+ 3H<sub>2</sub>(g)   2NH<sub>3</sub>(g) B) CO(g)+ H<sub>2</sub>O(g)   CO<sub>2</sub>(g)+ H<sub>2</sub>(g) C) CO(g)+ 3H<sub>2</sub>(g)   CH<sub>4</sub>(g)+ H<sub>2</sub>O(g) D) CaO(s)+ CO<sub>2</sub>(g)   CaCO<sub>3</sub>(s) E) HBr(g)   ½H<sub>2</sub>(g)+ ½Br<sub>2</sub>(l) <div style=padding-top: 35px> CaCO3(s)
E) HBr(g) <strong>For which of the following equilibria does K<sub>c</sub> = K<sub>p</sub>?</strong> A) N<sub>2</sub>(g)+ 3H<sub>2</sub>(g)   2NH<sub>3</sub>(g) B) CO(g)+ H<sub>2</sub>O(g)   CO<sub>2</sub>(g)+ H<sub>2</sub>(g) C) CO(g)+ 3H<sub>2</sub>(g)   CH<sub>4</sub>(g)+ H<sub>2</sub>O(g) D) CaO(s)+ CO<sub>2</sub>(g)   CaCO<sub>3</sub>(s) E) HBr(g)   ½H<sub>2</sub>(g)+ ½Br<sub>2</sub>(l) <div style=padding-top: 35px> ½H2(g)+ ½Br2(l)
Question
Write a balanced chemical equation which corresponds to the following equilibrium constant expression. <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) <div style=padding-top: 35px>

A) HNO2(aq)+ H2O( <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) <div style=padding-top: 35px> ) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) <div style=padding-top: 35px> NO2-(aq)+ H3O+(aq)
B) NO2-(aq)+ H3O+(aq) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) <div style=padding-top: 35px> HNO2(aq)+ H2O( <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) <div style=padding-top: 35px> )
C) NO2-(aq)+ H3O+(aq) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) <div style=padding-top: 35px> HNO2(aq)
D) H+(aq)+ OH-(aq) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) <div style=padding-top: 35px> H2O( <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) <div style=padding-top: 35px> )
E) HNO2(aq) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) <div style=padding-top: 35px> NO2-(aq)+ H3O+(aq)
Question
Given the following chemical equilibrium,
COCl2(g)  <strong>Given the following chemical equilibrium, COCl<sub>2</sub>(g)   CO(g)+ Cl<sub>2</sub>(g) Calculate the value of K<sub>c</sub>,given that K<sub>p</sub> = 6.5  \times  10<sup>11</sup> at 298 K.(R = 0.08206 L.atm/mol.K)</strong> A) 1.5  \times  10<sup>-12</sup> B) 3.8  \times  10<sup>-11</sup> C) 1.1  \times  10<sup>9</sup> D) 2.7  \times  10<sup>10</sup> E) 1.6  \times  10<sup>13</sup> <div style=padding-top: 35px>
CO(g)+ Cl2(g)
Calculate the value of Kc,given that Kp = 6.5 ×\times 1011 at 298 K.(R = 0.08206 L.atm/mol.K)

A) 1.5 ×\times 10-12
B) 3.8 ×\times 10-11
C) 1.1 ×\times 109
D) 2.7 ×\times 1010
E) 1.6 ×\times 1013
Question
For which of the following reactions are the numerical values of Kp and Kc the same?
1. 2SO2(g) + O2(g) <strong>For which of the following reactions are the numerical values of Kp and Kc the same? 1. 2SO<sub>2</sub>(g) + O<sub>2</sub>(g)  2SO3(g) 2. N2(g) + O2(g)    2NO(g) 3. H<sub>2</sub>(g)+ I<sub>2</sub>(g)   2HI(g)</strong> A) 1 only B) 2 only C) 1 and 2 D) 2 and 3 E) 1,2,and 3 <div style=padding-top: 35px> 2SO3(g)
2. N2(g) + O2(g) 11ea8937_ab81_0f67_a16d_5b4ecfd630df_TB4499_11 2NO(g)
3. H2(g)+ I2(g) 11ea8937_ab81_0f67_a16d_5b4ecfd630df_TB4499_11 2HI(g)

A) 1 only
B) 2 only
C) 1 and 2
D) 2 and 3
E) 1,2,and 3
Question
What is the Kc equilibrium-constant expression for the following equilibrium?
<strong>What is the K<sub>c</sub> equilibrium-constant expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>

A) <strong>What is the K<sub>c</sub> equilibrium-constant expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
B) <strong>What is the K<sub>c</sub> equilibrium-constant expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
C) <strong>What is the K<sub>c</sub> equilibrium-constant expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
D) <strong>What is the K<sub>c</sub> equilibrium-constant expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
E) <strong>What is the K<sub>c</sub> equilibrium-constant expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
Question
What is the expression for Kc for the following equilibrium?
<strong>What is the expression for K<sub>c</sub> for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>

A) <strong>What is the expression for K<sub>c</sub> for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
B) <strong>What is the expression for K<sub>c</sub> for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
C) <strong>What is the expression for K<sub>c</sub> for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
D) <strong>What is the expression for K<sub>c</sub> for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
E) <strong>What is the expression for K<sub>c</sub> for the following equilibrium?  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
Question
Write the expression for K for the reaction of hydrofluoric acid with water.
<strong>Write the expression for K for the reaction of hydrofluoric acid with water.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>

A) <strong>Write the expression for K for the reaction of hydrofluoric acid with water.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
B) <strong>Write the expression for K for the reaction of hydrofluoric acid with water.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
C) <strong>Write the expression for K for the reaction of hydrofluoric acid with water.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
D) <strong>Write the expression for K for the reaction of hydrofluoric acid with water.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
E) <strong>Write the expression for K for the reaction of hydrofluoric acid with water.  </strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
Question
What is the balanced equation for the following equilibrium expression? <strong>What is the balanced equation for the following equilibrium expression?  </strong> A) 6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g)   6SO<sub>3</sub>(g) B) 6SO<sub>3</sub>(g)   6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g) C) 6SO<sub>3</sub>(aq)   6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq) D) 6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq)   6SO<sub>3</sub>(aq) E) SO<sub>2</sub>(g)+   O<sub>2</sub>(g)   SO<sub>3</sub>(g) <div style=padding-top: 35px>

A) 6SO2(g)+ 3O2(g) <strong>What is the balanced equation for the following equilibrium expression?  </strong> A) 6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g)   6SO<sub>3</sub>(g) B) 6SO<sub>3</sub>(g)   6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g) C) 6SO<sub>3</sub>(aq)   6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq) D) 6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq)   6SO<sub>3</sub>(aq) E) SO<sub>2</sub>(g)+   O<sub>2</sub>(g)   SO<sub>3</sub>(g) <div style=padding-top: 35px> 6SO3(g)
B) 6SO3(g) <strong>What is the balanced equation for the following equilibrium expression?  </strong> A) 6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g)   6SO<sub>3</sub>(g) B) 6SO<sub>3</sub>(g)   6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g) C) 6SO<sub>3</sub>(aq)   6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq) D) 6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq)   6SO<sub>3</sub>(aq) E) SO<sub>2</sub>(g)+   O<sub>2</sub>(g)   SO<sub>3</sub>(g) <div style=padding-top: 35px> 6SO2(g)+ 3O2(g)
C) 6SO3(aq) <strong>What is the balanced equation for the following equilibrium expression?  </strong> A) 6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g)   6SO<sub>3</sub>(g) B) 6SO<sub>3</sub>(g)   6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g) C) 6SO<sub>3</sub>(aq)   6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq) D) 6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq)   6SO<sub>3</sub>(aq) E) SO<sub>2</sub>(g)+   O<sub>2</sub>(g)   SO<sub>3</sub>(g) <div style=padding-top: 35px> 6SO2(aq)+ 3O2(aq)
D) 6SO2(aq)+ 3O2(aq) <strong>What is the balanced equation for the following equilibrium expression?  </strong> A) 6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g)   6SO<sub>3</sub>(g) B) 6SO<sub>3</sub>(g)   6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g) C) 6SO<sub>3</sub>(aq)   6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq) D) 6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq)   6SO<sub>3</sub>(aq) E) SO<sub>2</sub>(g)+   O<sub>2</sub>(g)   SO<sub>3</sub>(g) <div style=padding-top: 35px> 6SO3(aq)
E) SO2(g)+ <strong>What is the balanced equation for the following equilibrium expression?  </strong> A) 6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g)   6SO<sub>3</sub>(g) B) 6SO<sub>3</sub>(g)   6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g) C) 6SO<sub>3</sub>(aq)   6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq) D) 6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq)   6SO<sub>3</sub>(aq) E) SO<sub>2</sub>(g)+   O<sub>2</sub>(g)   SO<sub>3</sub>(g) <div style=padding-top: 35px> O2(g) <strong>What is the balanced equation for the following equilibrium expression?  </strong> A) 6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g)   6SO<sub>3</sub>(g) B) 6SO<sub>3</sub>(g)   6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g) C) 6SO<sub>3</sub>(aq)   6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq) D) 6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq)   6SO<sub>3</sub>(aq) E) SO<sub>2</sub>(g)+   O<sub>2</sub>(g)   SO<sub>3</sub>(g) <div style=padding-top: 35px> SO3(g)
Question
If the reaction quotient,Q,is greater than K in a gas phase reaction,then

A) the chemical system has reached equilibrium.
B) the temperature must be increased for the reaction to proceed in the forward direction.
C) the reaction will proceed in the forward direction until equilibrium is established.
D) the reaction will proceed in the backward direction until equilibrium is established.
E) the reaction will proceed in the direction that increases the number of gas phase particles.
Question
At a high temperature,equal concentrations of 0.160 mol/L of H2(g)and I2(g)are initially present in a flask.The H2 and I2 react according to the balanced equation below.
<strong>At a high temperature,equal concentrations of 0.160 mol/L of H<sub>2</sub>(g)and I<sub>2</sub>(g)are initially present in a flask.The H<sub>2</sub> and I<sub>2</sub> react according to the balanced equation below.   When equilibrium is reached,the concentration of H<sub>2</sub>(g)has decreased to 0.036 mol/L.What is the equilibrium constant,K<sub>c</sub>,for the reaction?</strong> A) 3.4 B) 4.0 C) 12 D) 22 E) 48 <div style=padding-top: 35px>
When equilibrium is reached,the concentration of H2(g)has decreased to 0.036 mol/L.What is the equilibrium constant,Kc,for the reaction?

A) 3.4
B) 4.0
C) 12
D) 22
E) 48
Question
Consider the reaction
A(aq)  <strong>Consider the reaction A(aq)   2 B(aq)where K<sub>c</sub> = 4.1 at 25 <sup> \circ </sup>C.If 0.50 M A(aq)and 1.5 M B(aq)are initially present in a 1.0 L flask at 25 <sup> \circ </sup>C,what change in concentrations (if any)will occur in time?</strong> A) [A] will decrease and [B] will decrease. B) [A] will decrease and [B] will increase. C) [A] will increase and [B] will decrease. D) [A] will increase and [B] will increase. E) [A] and [B] remain unchanged. <div style=padding-top: 35px>  2 B(aq)where Kc = 4.1 at 25 \circ C.If 0.50 M A(aq)and 1.5 M B(aq)are initially present in a 1.0 L flask at 25 \circ C,what change in concentrations (if any)will occur in time?

A) [A] will decrease and [B] will decrease.
B) [A] will decrease and [B] will increase.
C) [A] will increase and [B] will decrease.
D) [A] will increase and [B] will increase.
E) [A] and [B] remain unchanged.
Question
Exactly 1.0 mol N2O4 is placed in an empty 1.0-L container and allowed to reach equilibrium described by the equation N2O4(g) <strong>Exactly 1.0 mol N<sub>2</sub>O<sub>4</sub> is placed in an empty 1.0-L container and allowed to reach equilibrium described by the equation N<sub>2</sub>O<sub>4</sub>(g)   2NO<sub>2</sub>(g).If at equilibrium the N<sub>2</sub>O<sub>4</sub> is 28.0% dissociated,what is the value of the equilibrium constant,K<sub>c</sub>,for the reaction under these conditions?</strong> A) 0.44 B) 2.3 C) 0.31 D) 0.78 E) 0.11 <div style=padding-top: 35px> 2NO2(g).If at equilibrium the N2O4 is 28.0% dissociated,what is the value of the equilibrium constant,Kc,for the reaction under these conditions?

A) 0.44
B) 2.3
C) 0.31
D) 0.78
E) 0.11
Question
Which of the following is always true for a reaction where Kc is  <strong>Which of the following is always true for a reaction where K<sub>c</sub> is   at 25<sup> \circ </sup>C?</strong> A) The reaction mixture contains mostly products at equilibrium. B) The reaction mixture contains mostly reactants at equilibrium. C) The rate of reaction is very fast. D) There are approximately equal moles of reactants and products at equilibrium. E) Both A and C. <div style=padding-top: 35px>  at 25 \circ C?

A) The reaction mixture contains mostly products at equilibrium.
B) The reaction mixture contains mostly reactants at equilibrium.
C) The rate of reaction is very fast.
D) There are approximately equal moles of reactants and products at equilibrium.
E) Both A and C.
Question
For the reaction TlSCN(s)  <strong>For the reaction TlSCN(s)   Tl<sup>+</sup>(aq)+ SCN<sup>-</sup>(aq),K<sub>c</sub> =   At 25<sup> \circ </sup>C.Which of the following concerning a 125 mL solution containing   M Tl<sup>+</sup>,   M SCN<sup>-</sup> and a large excess of TlSCN(s)is/are correct? 1)The mixture is at equilibrium. 2)Additional TlSCN(s)must precipitate to attain equilibrium. 3)The reaction quotient (Q)is greater than one.</strong> A) 1 only B) 2 only C) 3 only D) 1 and 3 E) 2 and 3 <div style=padding-top: 35px>  Tl+(aq)+ SCN-(aq),Kc =  <strong>For the reaction TlSCN(s)   Tl<sup>+</sup>(aq)+ SCN<sup>-</sup>(aq),K<sub>c</sub> =   At 25<sup> \circ </sup>C.Which of the following concerning a 125 mL solution containing   M Tl<sup>+</sup>,   M SCN<sup>-</sup> and a large excess of TlSCN(s)is/are correct? 1)The mixture is at equilibrium. 2)Additional TlSCN(s)must precipitate to attain equilibrium. 3)The reaction quotient (Q)is greater than one.</strong> A) 1 only B) 2 only C) 3 only D) 1 and 3 E) 2 and 3 <div style=padding-top: 35px>
At 25 \circ C.Which of the following concerning a 125 mL solution containing  <strong>For the reaction TlSCN(s)   Tl<sup>+</sup>(aq)+ SCN<sup>-</sup>(aq),K<sub>c</sub> =   At 25<sup> \circ </sup>C.Which of the following concerning a 125 mL solution containing   M Tl<sup>+</sup>,   M SCN<sup>-</sup> and a large excess of TlSCN(s)is/are correct? 1)The mixture is at equilibrium. 2)Additional TlSCN(s)must precipitate to attain equilibrium. 3)The reaction quotient (Q)is greater than one.</strong> A) 1 only B) 2 only C) 3 only D) 1 and 3 E) 2 and 3 <div style=padding-top: 35px>
M Tl+,  <strong>For the reaction TlSCN(s)   Tl<sup>+</sup>(aq)+ SCN<sup>-</sup>(aq),K<sub>c</sub> =   At 25<sup> \circ </sup>C.Which of the following concerning a 125 mL solution containing   M Tl<sup>+</sup>,   M SCN<sup>-</sup> and a large excess of TlSCN(s)is/are correct? 1)The mixture is at equilibrium. 2)Additional TlSCN(s)must precipitate to attain equilibrium. 3)The reaction quotient (Q)is greater than one.</strong> A) 1 only B) 2 only C) 3 only D) 1 and 3 E) 2 and 3 <div style=padding-top: 35px>
M SCN- and a large excess of TlSCN(s)is/are correct?
1)The mixture is at equilibrium.
2)Additional TlSCN(s)must precipitate to attain equilibrium.
3)The reaction quotient (Q)is greater than one.

A) 1 only
B) 2 only
C) 3 only
D) 1 and 3
E) 2 and 3
Question
Which of the following statements about the reaction quotient,Q,is false?

A) The value of Q can be used to predict equilibrium concentrations.
B) It has the same expression as Kc.
C) Its value is calculated using nonequilibrium concentrations.
D) If Q > Kc,the reaction must move to equilibrium by forming more reactants.
E) If Q < Kc,the reaction must move to equilibrium by forming more products.
Question
At a given temperature,0.0664 mol N2O4(g)is placed in a 1.00 L flask.After reaching equilibrium,the concentration of NO2(g)is 6.1 ×\times 10-3 M.What is Kc for the reaction below?
 <strong>At a given temperature,0.0664 mol N<sub>2</sub>O<sub>4</sub>(g)is placed in a 1.00 L flask.After reaching equilibrium,the concentration of NO<sub>2</sub>(g)is 6.1  \times  10<sup>-3</sup> M.What is K<sub>c</sub> for the reaction below?  </strong> A) 3.7  \times  10<sup>-5</sup> B) 1.4  \times  10<sup>-4</sup> C) 5.9  \times  10<sup>-4</sup> D) 9.6  \times  10<sup>-2</sup> E) 1.8  \times  10<sup>3</sup> <div style=padding-top: 35px>

A) 3.7 ×\times 10-5
B) 1.4 ×\times 10-4
C) 5.9 ×\times 10-4
D) 9.6 ×\times 10-2
E) 1.8 ×\times 103
Question
Consider the following reaction:
<strong>Consider the following reaction:   Given that 1.00 mol of HF(g),0.389 mol of H<sub>2</sub>(g),and 0.750 mol of F<sub>2</sub>(g)are mixed in a 5.00-L flask,determine the reaction quotient,Q.</strong> A) Q = 0.0729 B) Q = 0.292 C) Q = 0.0584 D) Q = 2.14 E) none of these <div style=padding-top: 35px>
Given that 1.00 mol of HF(g),0.389 mol of H2(g),and 0.750 mol of F2(g)are mixed in a 5.00-L flask,determine the reaction quotient,Q.

A) Q = 0.0729
B) Q = 0.292
C) Q = 0.0584
D) Q = 2.14
E) none of these
Question
At 25 \circ C,0.138 mg AgBr dissolves in 10.0 L of water.What is the equilibrium constant for the reaction below?
 <strong>At 25 <sup> \circ </sup>C,0.138 mg AgBr dissolves in 10.0 L of water.What is the equilibrium constant for the reaction below?  </strong> A) 5.40  \times  10<sup>-13</sup> B) 5.40  \times  10<sup>-11</sup> C) 1.90  \times  10<sup>-8</sup> D) 7.35  \times  10<sup>-7</sup> E) 1.90  \times  10<sup>-6</sup> <div style=padding-top: 35px>

A) 5.40 ×\times 10-13
B) 5.40 ×\times 10-11
C) 1.90 ×\times 10-8
D) 7.35 ×\times 10-7
E) 1.90 ×\times 10-6
Question
The reaction quotient,Q,for a system is <strong>The reaction quotient,Q,for a system is   .If the equilibrium constant for the system at some temperature is   ,what will happen as the reaction mixture returns to equilibrium?</strong> A) The equilibrium constant will increase until it equals the reaction quotient. B) There will be a net gain in both product(s)and reactant(s). C) There will be a net gain in product(s). D) There will be a net gain in reactant(s). E) The equilibrium constant will decrease until it equals the reaction quotient. <div style=padding-top: 35px> .If the equilibrium constant for the system at some temperature is <strong>The reaction quotient,Q,for a system is   .If the equilibrium constant for the system at some temperature is   ,what will happen as the reaction mixture returns to equilibrium?</strong> A) The equilibrium constant will increase until it equals the reaction quotient. B) There will be a net gain in both product(s)and reactant(s). C) There will be a net gain in product(s). D) There will be a net gain in reactant(s). E) The equilibrium constant will decrease until it equals the reaction quotient. <div style=padding-top: 35px>
,what will happen as the reaction mixture returns to equilibrium?

A) The equilibrium constant will increase until it equals the reaction quotient.
B) There will be a net gain in both product(s)and reactant(s).
C) There will be a net gain in product(s).
D) There will be a net gain in reactant(s).
E) The equilibrium constant will decrease until it equals the reaction quotient.
Question
An aqueous mixture of phenol and ammonia has initial concentrations of 0.200 M C6H5OH(aq)and 0.120 M NH3(aq).At equilibrium,the C6H5O-(aq)concentration is 0.050 M.Calculate K for the reaction.
C6H5OH(aq)+ NH3(aq) <strong>An aqueous mixture of phenol and ammonia has initial concentrations of 0.200 M C<sub>6</sub>H<sub>5</sub>OH(aq)and 0.120 M NH<sub>3</sub>(aq).At equilibrium,the C<sub>6</sub>H<sub>5</sub>O<sup>-</sup>(aq)concentration is 0.050 M.Calculate K for the reaction. C<sub>6</sub>H<sub>5</sub>OH(aq)+ NH<sub>3</sub>(aq)   C<sub>6</sub>H<sub>5</sub>O<sup>-</sup> + NH<sub>4</sub><sup>+</sup>(aq)</strong> A) 0.10 B) 0.24 C) 2.1 D) 4.2 E) 4.8 <div style=padding-top: 35px> C6H5O- + NH4+(aq)

A) 0.10
B) 0.24
C) 2.1
D) 4.2
E) 4.8
Question
Excess Ag2SO4(s)is placed in water at 25 \circ C.At equilibrium,the solution contains 0.029 M Ag+(aq).What is the equilibrium constant for the reaction below?
 <strong>Excess Ag<sub>2</sub>SO<sub>4</sub>(s)is placed in water at 25 <sup> \circ </sup>C.At equilibrium,the solution contains 0.029 M Ag<sup>+</sup>(aq).What is the equilibrium constant for the reaction below?  </strong> A) 1.8  \times  10<sup>-7</sup> B) 6.1  \times  10<sup>-6</sup> C) 1.2  \times  10<sup>-5</sup> D) 2.4  \times  10<sup>-5</sup> E) 8.4  \times  10<sup>-4</sup> <div style=padding-top: 35px>

A) 1.8 ×\times 10-7
B) 6.1 ×\times 10-6
C) 1.2 ×\times 10-5
D) 2.4 ×\times 10-5
E) 8.4 ×\times 10-4
Question
A 2.5 L flask is filled with 0.25 mol SO3,0.20 mol SO2,and 0.40 mol O2,and allowed to reach equilibrium.Assume the temperature of the mixture is chosen so that Kc = 0.12.Predict the effect on the concentration of SO3 as equilibrium is achieved by using Q,the reaction quotient.
2 SO3(g) <strong>A 2.5 L flask is filled with 0.25 mol SO<sub>3</sub>,0.20 mol SO<sub>2</sub>,and 0.40 mol O<sub>2</sub>,and allowed to reach equilibrium.Assume the temperature of the mixture is chosen so that K<sub>c</sub> = 0.12.Predict the effect on the concentration of SO<sub>3</sub> as equilibrium is achieved by using Q,the reaction quotient. 2 SO<sub>3</sub>(g)   2 SO<sub>2</sub>(g)+ O<sub>2</sub>(g)</strong> A) [SO<sub>3</sub>] will decrease because Q > K. B) [SO<sub>3</sub>] will decrease because Q < K. C) [SO<sub>3</sub>] will increase because Q < K. D) [SO<sub>3</sub>] will increase because Q > K. E) [SO<sub>3</sub>] will remain the same because Q = K. <div style=padding-top: 35px> 2 SO2(g)+ O2(g)

A) [SO3] will decrease because Q > K.
B) [SO3] will decrease because Q < K.
C) [SO3] will increase because Q < K.
D) [SO3] will increase because Q > K.
E) [SO3] will remain the same because Q = K.
Question
A 10.0-g sample of solid NH4Cl is heated in a 5.00-L container to 900.°C.At equilibrium the pressure of NH3(g)is 1.47 atm.
NH4Cl(s) <strong>A 10.0-g sample of solid NH<sub>4</sub>Cl is heated in a 5.00-L container to 900.°C.At equilibrium the pressure of NH<sub>3</sub>(g)is 1.47 atm. NH<sub>4</sub>Cl(s)   NH<sub>3</sub>(g)+ HCl(g) The equilibrium constant,K<sub>p</sub>,for the reaction is:</strong> A) 2.16 B) 7.78 C) 1.47 D) 2.94 E) none of these <div style=padding-top: 35px> NH3(g)+ HCl(g)
The equilibrium constant,Kp,for the reaction is:

A) 2.16
B) 7.78
C) 1.47
D) 2.94
E) none of these
Question
If the reaction quotient,Q,is equal to K in a gas phase reaction,then

A) the chemical system has reached equilibrium.
B) the temperature must be increased for the reaction to proceed in the forward direction.
C) the reaction will proceed in the forward direction until equilibrium is established.
D) the reaction will proceed in the backward direction until equilibrium is established.
E) the reaction will proceed in the direction that increases the number of gas phase particles.
Question
When 0.20 mole HF is dissolved in water to a volume of 1.00 L,5.8% of the HF dissociates to form F-(aq).What is the equilibrium constant for the reaction?
 <strong>When 0.20 mole HF is dissolved in water to a volume of 1.00 L,5.8% of the HF dissociates to form F<sup>-</sup>(aq).What is the equilibrium constant for the reaction?  </strong> A) 1.3  \times  10<sup>-4</sup> B) 7.1  \times  10<sup>-4</sup> C) 1.2  \times  10<sup>-2</sup> D) 1.7  \times  10<sup>-2</sup> E) 6.2  \times  10<sup>-2</sup> <div style=padding-top: 35px>

A) 1.3 ×\times 10-4
B) 7.1 ×\times 10-4
C) 1.2 ×\times 10-2
D) 1.7 ×\times 10-2
E) 6.2 ×\times 10-2
Question
Consider the following equilibrium:
<strong>Consider the following equilibrium:   Suppose 15.6 g each of CH<sub>4</sub>,C<sub>2</sub>H<sub>6</sub>,C<sub>5</sub>H<sub>12</sub>,and C<sub>6</sub>H<sub>14</sub> are placed in a 45.0-L reaction vessel at 500 K.Which of the following statements is correct?</strong> A) Because Q<sub>c</sub> < K<sub>c</sub>,more products will be formed. B) Because Q<sub>c</sub> = 1,the system is at equilibrium. C) Because Q<sub>c</sub> = 1,more products will be formed. D) Because Q<sub>c</sub> = 1,more reactants will be formed. E) Because Q<sub>c</sub> > K<sub>c</sub>,more reactants will be formed. <div style=padding-top: 35px>
Suppose 15.6 g each of CH4,C2H6,C5H12,and C6H14 are placed in a 45.0-L reaction vessel at 500 K.Which of the following statements is correct?

A) Because Qc < Kc,more products will be formed.
B) Because Qc = 1,the system is at equilibrium.
C) Because Qc = 1,more products will be formed.
D) Because Qc = 1,more reactants will be formed.
E) Because Qc > Kc,more reactants will be formed.
Question
What is the reaction quotient,Q,for the equilibrium
<strong>What is the reaction quotient,Q,for the equilibrium  SCN<sup>-</sup>(aq) When 0.4257 L of   M Ag<sup>+</sup> is combined with 0.2376 L of   M SCN<sup>-</sup> in the presence of an excess of AgSCN(s)?</strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px> SCN-(aq)
When 0.4257 L of <strong>What is the reaction quotient,Q,for the equilibrium  SCN<sup>-</sup>(aq) When 0.4257 L of   M Ag<sup>+</sup> is combined with 0.2376 L of   M SCN<sup>-</sup> in the presence of an excess of AgSCN(s)?</strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
M Ag+ is combined with 0.2376 L of <strong>What is the reaction quotient,Q,for the equilibrium  SCN<sup>-</sup>(aq) When 0.4257 L of   M Ag<sup>+</sup> is combined with 0.2376 L of   M SCN<sup>-</sup> in the presence of an excess of AgSCN(s)?</strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
M SCN- in the presence of an excess of AgSCN(s)?

A) <strong>What is the reaction quotient,Q,for the equilibrium  SCN<sup>-</sup>(aq) When 0.4257 L of   M Ag<sup>+</sup> is combined with 0.2376 L of   M SCN<sup>-</sup> in the presence of an excess of AgSCN(s)?</strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
B) <strong>What is the reaction quotient,Q,for the equilibrium  SCN<sup>-</sup>(aq) When 0.4257 L of   M Ag<sup>+</sup> is combined with 0.2376 L of   M SCN<sup>-</sup> in the presence of an excess of AgSCN(s)?</strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
C) <strong>What is the reaction quotient,Q,for the equilibrium  SCN<sup>-</sup>(aq) When 0.4257 L of   M Ag<sup>+</sup> is combined with 0.2376 L of   M SCN<sup>-</sup> in the presence of an excess of AgSCN(s)?</strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
D) <strong>What is the reaction quotient,Q,for the equilibrium  SCN<sup>-</sup>(aq) When 0.4257 L of   M Ag<sup>+</sup> is combined with 0.2376 L of   M SCN<sup>-</sup> in the presence of an excess of AgSCN(s)?</strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
E) <strong>What is the reaction quotient,Q,for the equilibrium  SCN<sup>-</sup>(aq) When 0.4257 L of   M Ag<sup>+</sup> is combined with 0.2376 L of   M SCN<sup>-</sup> in the presence of an excess of AgSCN(s)?</strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
Question
Nitrogen trifluoride decomposes at to form nitrogen and fluorine gases according to the following equation:
 <strong>Nitrogen trifluoride decomposes at to form nitrogen and fluorine gases according to the following equation:   6.00-L reaction vessel is initially charged with 1.96 mol of NF<sub>3</sub> and allowed to come to equilibrium at 800 K.Once equilibrium is established,the reaction vessel is found to contain 0.0380 mol of N<sub>2</sub>.What is the value of K<sub>p</sub> at this temperature? (R = 0.0821 L.atm.mol.K)</strong> A) 1.53  \times  10<sup>-5</sup> B) 1.91  \times  10<sup>-3</sup> C) 1.76  \times  10<sup>-3</sup> D) 1.59  \times  10<sup>-5</sup> E) 4.43  \times  10<sup>-7</sup> <div style=padding-top: 35px>
6.00-L reaction vessel is initially charged with 1.96 mol of NF3 and allowed to come to equilibrium at 800 K.Once equilibrium is established,the reaction vessel is found to contain 0.0380 mol of N2.What is the value of Kp at this temperature? (R = 0.0821 L.atm.mol.K)

A) 1.53 ×\times 10-5
B) 1.91 ×\times 10-3
C) 1.76 ×\times 10-3
D) 1.59 ×\times 10-5
E) 4.43 ×\times 10-7
Question
The equilibrium constant at 25 \circ C for the dissolution of silver iodide is
8.5 ×\times 10-17.AgI(s)  <strong>The equilibrium constant at 25 <sup> \circ </sup>C for the dissolution of silver iodide is 8.5  \times  10<sup>-17</sup>.AgI(s)   Ag<sup>+</sup>(aq)+ I<sup>-</sup>(aq) If an excess quantity of AgI(s)is added to water and allowed to equilibrate,what is the equilibrium concentration of I<sup>-</sup>?</strong> A) 7.2  \times  10<sup>-33</sup> M B) 4.3  \times  10<sup>-17</sup> M C) 8.5  \times  10<sup>-17</sup> M D) 6.5  \times  10<sup>-9</sup> M E) 9.2  \times  10<sup>-9</sup> M <div style=padding-top: 35px>  Ag+(aq)+ I-(aq)
If an excess quantity of AgI(s)is added to water and allowed to equilibrate,what is the equilibrium concentration of I-?

A) 7.2 ×\times 10-33 M
B) 4.3 ×\times 10-17 M
C) 8.5 ×\times 10-17 M
D) 6.5 ×\times 10-9 M
E) 9.2 ×\times 10-9 M
Question
The following reaction occurred when a 1.0-liter reaction vessel was initially charged with 2.0 moles of N2(g)and 4.0 moles of H2(g):
 <strong>The following reaction occurred when a 1.0-liter reaction vessel was initially charged with 2.0 moles of N<sub>2</sub>(g)and 4.0 moles of H<sub>2</sub>(g):   Once equilibrium was established,the concentration of NH<sub>3</sub>(g)was determined to be 0.59 M at 700.°C.The value for K<sub>c</sub> at 700.°C for the formation of ammonia is:</strong> A) 3.5  \times  10<sup>-1</sup> B) 6.8  \times  10<sup>-3</sup> C) 1.1  \times  10<sup>-1</sup> D) 6.6  \times  10<sup>-2</sup> E) none of these <div style=padding-top: 35px>
Once equilibrium was established,the concentration of NH3(g)was determined to be 0.59 M at 700.°C.The value for Kc at 700.°C for the formation of ammonia is:

A) 3.5 ×\times 10-1
B) 6.8 ×\times 10-3
C) 1.1 ×\times 10-1
D) 6.6 ×\times 10-2
E) none of these
Question
Consider the following equilibrium:
CO2(g)+ H2(g) <strong>Consider the following equilibrium: CO<sub>2</sub>(g)+ H<sub>2</sub>(g)  CO(g)+ H<sub>2</sub>O(g); K<sub>c</sub> = 1.6 at 1260 K Suppose 0.038 mol CO<sub>2</sub> and 0.022 mol H<sub>2 </sub>are placed in a 1.50-L vessel at 1260 K.What is the equilibrium partial pressure of CO(g)? (R = 0.0821 L · atm/K·mol)</strong> A) 9.9 atm B) 1.1 atm C) 4.1 atm D) 2.6 atm E) 1.5 atm <div style=padding-top: 35px> CO(g)+ H2O(g); Kc = 1.6 at 1260 K
Suppose 0.038 mol CO2 and 0.022 mol H2 are placed in a 1.50-L vessel at 1260 K.What is the equilibrium partial pressure of CO(g)? (R = 0.0821 L · atm/K·mol)

A) 9.9 atm
B) 1.1 atm
C) 4.1 atm
D) 2.6 atm
E) 1.5 atm
Question
The equilibrium constant,Kc,for the decomposition of ammonium hydrogen sulfide is 1.8 ×\times 10-4 at 25 \circ C.NH4HS(s)  <strong>The equilibrium constant,K<sub>c</sub>,for the decomposition of ammonium hydrogen sulfide is 1.8  \times  10<sup>-4</sup> at 25 <sup> \circ </sup>C.NH<sub>4</sub>HS(s)   NH<sub>3</sub>(g)+ H<sub>2</sub>S(g) If excess NH<sub>4</sub>HS(s)is allowed to equilibrate at 25 <sup> \circ </sup>C,what is the equilibrium concentration of NH<sub>3</sub>?</strong> A) 3.2  \times  10<sup>-8</sup> M B) 9.0  \times  10<sup>-5</sup> M C) 1.8  \times  10<sup>-4</sup> M D) 6.7  \times  10<sup>-3</sup> M E) 1.3  \times  10<sup>-2</sup> M <div style=padding-top: 35px>  NH3(g)+ H2S(g)
If excess NH4HS(s)is allowed to equilibrate at 25 \circ C,what is the equilibrium concentration of NH3?

A) 3.2 ×\times 10-8 M
B) 9.0 ×\times 10-5 M
C) 1.8 ×\times 10-4 M
D) 6.7 ×\times 10-3 M
E) 1.3 ×\times 10-2 M
Question
Nitrogen and oxygen gases may react to form nitrogen monoxide.
At 1500 \circ C,Kc equals 1.0 ×\times 10-5.N2(g)+ O2(g)  <strong>Nitrogen and oxygen gases may react to form nitrogen monoxide. At 1500 <sup> \circ </sup>C,K<sub>c</sub> equals 1.0  \times 10<sup>-</sup><sup>5</sup>.N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g) If 0.030 mol N<sub>2</sub> and 0.030 mol O<sub>2</sub> are sealed in a 1.0 L flask at 1500 <sup> \circ </sup>C,what is the concentration of NO(g)when equilibrium is established?</strong> A) 3.0  \times  10<sup>-7</sup> M B) 4.7  \times  10<sup>-5</sup> M C) 9.5  \times  10<sup>-5</sup> M D) 3.0  \times  10<sup>-2</sup> M E) 9.1  \times 10<sup>1</sup> M <div style=padding-top: 35px>  2 NO(g)
If 0.030 mol N2 and 0.030 mol O2 are sealed in a 1.0 L flask at 1500 \circ C,what is the concentration of NO(g)when equilibrium is established?

A) 3.0 ×\times 10-7 M
B) 4.7 ×\times 10-5 M
C) 9.5 ×\times 10-5 M
D) 3.0 ×\times 10-2 M
E) 9.1 ×\times 101 M
Question
For the equilibrium PCl5(g) <strong>For the equilibrium PCl<sub>5</sub>(g)   PCl<sub>3</sub>(g)+ Cl<sub>2</sub>(g),K<sub>c</sub> = 4.0 at 228°C.If pure PCl<sub>5</sub> is placed in a 1.00-L container and allowed to come to equilibrium,and the equilibrium concentration of PCl<sub>5</sub>(g)is 0.26 M,what is the equilibrium concentration of PCl<sub>3</sub>?</strong> A) 0.13 M B) 0.37 M C) 0.26 M D) 1.0 M E) 0.017 M <div style=padding-top: 35px> PCl3(g)+ Cl2(g),Kc = 4.0 at 228°C.If pure PCl5 is placed in a 1.00-L container and allowed to come to equilibrium,and the equilibrium concentration of PCl5(g)is 0.26 M,what is the equilibrium concentration of PCl3?

A) 0.13 M
B) 0.37 M
C) 0.26 M
D) 1.0 M
E) 0.017 M
Question
Consider the reaction H2 + I2  <strong>Consider the reaction H<sub>2</sub> + I<sub>2</sub>   2HI for which K<sub>c</sub> = 43.6 at a high temperature.If an equimolar mixture of reactants gives the concentration of the product to be 0.50 M at equilibrium,determine the equilibrium concentration of the hydrogen.</strong> A) 7.6  \times  10<sup>-2 </sup>M B) 1.1  \times  10<sup>-1</sup> M C) 3.8  \times  10<sup>-2 </sup>M D) 1.3  \times  10<sup>1 </sup>M E) 5.7  \times  10<sup>-3 </sup>M <div style=padding-top: 35px>  2HI for which Kc = 43.6 at a high temperature.If an equimolar mixture of reactants gives the concentration of the product to be 0.50 M at equilibrium,determine the equilibrium concentration of the hydrogen.

A) 7.6 ×\times 10-2 M
B) 1.1 ×\times 10-1 M
C) 3.8 ×\times 10-2 M
D) 1.3 ×\times 101 M
E) 5.7 ×\times 10-3 M
Question
A 2.50-mol sample of HI is placed in a 1.00-L vessel at 460°C,and the reaction system is allowed to come to equilibrium.The HI partially decomposes,forming 0.191 mol H2 and 0.191 mol I2 at equilibrium.What is the equilibrium constant Kc for the following reaction at 460°C?
½ H2(g)+ ½ I2(g)  <strong>A 2.50-mol sample of HI is placed in a 1.00-L vessel at 460°C,and the reaction system is allowed to come to equilibrium.The HI partially decomposes,forming 0.191 mol H<sub>2</sub> and 0.191 mol I<sub>2</sub> at equilibrium.What is the equilibrium constant K<sub>c</sub> for the following reaction at 460°C? ½ H<sub>2</sub>(g)+ ½ I<sub>2</sub>(g)   HI(g)</strong> A) 1.23  \times  10<sup>2</sup> B) 8.10  \times  10<sup>-3</sup> C) 1.72  \times  10<sup>-2</sup> D) 11.1 E) 7.63 <div style=padding-top: 35px>  HI(g)

A) 1.23 ×\times 102
B) 8.10 ×\times 10-3
C) 1.72 ×\times 10-2
D) 11.1
E) 7.63
Question
Nitrosyl bromide decomposes according to the chemical equation below.2 NOBr(g)  <strong>Nitrosyl bromide decomposes according to the chemical equation below.2 NOBr(g)   2 NO(g)+ Br<sub>2</sub>(g) When 0.260 atm of NOBr is sealed in a flask and allowed to reach equilibrium,22% of the NOBr decomposes.What is the equilibrium constant,K<sub>p</sub>,for the reaction?</strong> A) 2.3  \times  10<sup>-3</sup> B) 4.5  \times  10<sup>-3</sup> C) 3.5  \times  10<sup>-2</sup> D) 4.8  \times  10<sup>-2</sup> E) 8.0  \times  10<sup>-2</sup> <div style=padding-top: 35px>  2 NO(g)+ Br2(g)
When 0.260 atm of NOBr is sealed in a flask and allowed to reach equilibrium,22% of the NOBr decomposes.What is the equilibrium constant,Kp,for the reaction?

A) 2.3 ×\times 10-3
B) 4.5 ×\times 10-3
C) 3.5 ×\times 10-2
D) 4.8 ×\times 10-2
E) 8.0 ×\times 10-2
Question
For the reaction given below,2.00 moles of A and 3.00 moles of B are placed in a 6.00-L container.
A(g)+ 2B(g) <strong>For the reaction given below,2.00 moles of A and 3.00 moles of B are placed in a 6.00-L container. A(g)+ 2B(g)   C(g) At equilibrium,the concentration of A is 0.223 mol/L.What is the value of K<sub>c</sub>?</strong> A) 1.41 B) 1.77 C) 6.34 D) 0.223 E) 0.495 <div style=padding-top: 35px> C(g)
At equilibrium,the concentration of A is 0.223 mol/L.What is the value of Kc?

A) 1.41
B) 1.77
C) 6.34
D) 0.223
E) 0.495
Question
Sulfuryl chloride decomposes to sulfur dioxide and chlorine.
SO2Cl2(g) <strong>Sulfuryl chloride decomposes to sulfur dioxide and chlorine. SO<sub>2</sub>Cl<sub>2</sub>(g)   SO<sub>2</sub>(g)+ Cl<sub>2</sub>(g) K<sub>c</sub> is 0.045 at 648 K.If an initial concentration of 0.075 M SO<sub>2</sub>Cl<sub>2</sub> is allowed to equilibrate,what is the equilibrium concentration of Cl<sub>2</sub>?</strong> A) 0.0034 M B) 0.030 M C) 0.040 M D) 0.058 M E) 0.075 M <div style=padding-top: 35px> SO2(g)+ Cl2(g)
Kc is 0.045 at 648 K.If an initial concentration of 0.075 M SO2Cl2 is allowed to equilibrate,what is the equilibrium concentration of Cl2?

A) 0.0034 M
B) 0.030 M
C) 0.040 M
D) 0.058 M
E) 0.075 M
Question
In an experiment,0.42 mol H2 and 0.42 mol I2 are mixed in a 1.00-L container,and the reaction forms HI.If Kc = 49.for this reaction,what is the equilibrium concentration of HI?
I2(g)+ H2(g) <strong>In an experiment,0.42 mol H<sub>2</sub> and 0.42 mol I<sub>2</sub> are mixed in a 1.00-L container,and the reaction forms HI.If K<sub>c</sub> = 49.for this reaction,what is the equilibrium concentration of HI? I<sub>2</sub>(g)+ H<sub>2</sub>(g)    2HI(g)</strong> A) 0.81 M B) 0.74 M C) 0.65 M D) 0.105 M E) 0.056 M <div style=padding-top: 35px> 2HI(g)

A) 0.81 M
B) 0.74 M
C) 0.65 M
D) 0.105 M
E) 0.056 M
Question
A sample of solid NH4NO3 was placed in an evacuated container and then heated so that it decomposed explosively according to the following equation:
<strong>A sample of solid NH<sub>4</sub>NO<sub>3</sub> was placed in an evacuated container and then heated so that it decomposed explosively according to the following equation:   At equilibrium the total pressure in the container was found to be 2.81 atm at a temperature of 500.°C.Calculate K<sub>p</sub>.</strong> A) 1.75 B) 0.877 C) 3.29 D) 88.8 E) 0.822 <div style=padding-top: 35px>
At equilibrium the total pressure in the container was found to be 2.81 atm at a temperature of 500.°C.Calculate Kp.

A) 1.75
B) 0.877
C) 3.29
D) 88.8
E) 0.822
Question
At 25 \circ C,the decomposition of dinitrogen tetraoxide
N2O4(g)  <strong>At 25 <sup> \circ </sup>C,the decomposition of dinitrogen tetraoxide N<sub>2</sub>O<sub>4</sub>(g)   2 NO<sub>2</sub>(g) Has an equilibrium constant (K<sub>p</sub>)of 0.144.At equilibrium,the total pressure of the system is 0.0758 atm.What is the partial pressure of each gas?</strong> A) 0.0745 atm NO<sub>2</sub>(g)and 0.0385 N<sub>2</sub>O<sub>4</sub>(g) B) 0.0549 atm NO<sub>2</sub>(g)and 0.0209 N<sub>2</sub>O<sub>4</sub>(g) C) 0.0531 atm NO<sub>2</sub>(g)and 0.0227 N<sub>2</sub>O<sub>4</sub>(g) D) 0.0502 atm NO<sub>2</sub>(g)and 0.0256 N<sub>2</sub>O<sub>4</sub>(g) E) 0.0381 atm NO<sub>2</sub>(g)and 0.0377 N<sub>2</sub>O<sub>4</sub>(g) <div style=padding-top: 35px>  2 NO2(g)
Has an equilibrium constant (Kp)of 0.144.At equilibrium,the total pressure of the system is 0.0758 atm.What is the partial pressure of each gas?

A) 0.0745 atm NO2(g)and 0.0385 N2O4(g)
B) 0.0549 atm NO2(g)and 0.0209 N2O4(g)
C) 0.0531 atm NO2(g)and 0.0227 N2O4(g)
D) 0.0502 atm NO2(g)and 0.0256 N2O4(g)
E) 0.0381 atm NO2(g)and 0.0377 N2O4(g)
Question
A mixture of nitrogen and hydrogen was allowed to come to equilibrium at a given temperature.
3H2 + N2 <strong>A mixture of nitrogen and hydrogen was allowed to come to equilibrium at a given temperature. 3H<sub>2</sub> + N<sub>2</sub>   2NH<sub>3</sub> An analysis of the mixture at equilibrium revealed 2.1 mol N<sub>2</sub>,3.2 mol H<sub>2</sub>,and 1.8 mol NH<sub>3</sub>.How many moles of H<sub>2</sub> were present at the beginning of the reaction?</strong> A) 3.2 B) 4.8 C) 5.0 D) 5.9 E) 4.4 <div style=padding-top: 35px> 2NH3
An analysis of the mixture at equilibrium revealed 2.1 mol N2,3.2 mol H2,and 1.8 mol NH3.How many moles of H2 were present at the beginning of the reaction?

A) 3.2
B) 4.8
C) 5.0
D) 5.9
E) 4.4
Question
For the equilibrium N2O4(g)  <strong>For the equilibrium N<sub>2</sub>O<sub>4</sub>(g)   2NO<sub>2</sub>(g),at 298 K,K<sub>p</sub> = 0.15.For this reaction system,it is found that the partial pressure of N<sub>2</sub>O<sub>4</sub> is 3.6  \times  10<sup>-2</sup> atm at equilibrium.What is the partial pressure of NO<sub>2</sub> at equilibrium?</strong> A) 4.9 atm B) 24 atm C) 0.0017 atm D) 0.0054 atm E) 0.073 atm <div style=padding-top: 35px>  2NO2(g),at 298 K,Kp = 0.15.For this reaction system,it is found that the partial pressure of N2O4 is 3.6 ×\times 10-2 atm at equilibrium.What is the partial pressure of NO2 at equilibrium?

A) 4.9 atm
B) 24 atm
C) 0.0017 atm
D) 0.0054 atm
E) 0.073 atm
Question
At 800 K,the equilibrium constant,Kp,for the following reaction is
3.2 ×\times 10-7.2 H2S(g)  <strong>At 800 K,the equilibrium constant,K<sub>p</sub>,for the following reaction is 3.2  \times  10<sup>-7</sup>.2 H<sub>2</sub>S(g)   2 H<sub>2</sub>(g)+ S<sub>2</sub>(g) A reaction vessel at 800 K initially contains 3.00 atm of H<sub>2</sub>S.If the reaction is allowed to equilibrate,what is the equilibrium pressure of S<sub>2</sub>?</strong> A) 8.5  \times  10<sup>-5</sup> atm B) 6.2  \times  10<sup>-3</sup> atm C) 9.0  \times  10<sup>-3</sup> atm D) 1.1  \times  10<sup>-2</sup> atm E) 1.4  \times  10<sup>-2</sup> atm <div style=padding-top: 35px>  2 H2(g)+ S2(g)
A reaction vessel at 800 K initially contains 3.00 atm of H2S.If the reaction is allowed to equilibrate,what is the equilibrium pressure of S2?

A) 8.5 ×\times 10-5 atm
B) 6.2 ×\times 10-3 atm
C) 9.0 ×\times 10-3 atm
D) 1.1 ×\times 10-2 atm
E) 1.4 ×\times 10-2 atm
Question
At 700 K,Kp for the following equilibrium is
5.6 ×\times 10-3.2HgO(s)  <strong>At 700 K,K<sub>p</sub> for the following equilibrium is 5.6  \times  10<sup>-3</sup>.2HgO(s)   2Hg(l)+ O<sub>2</sub>(g) Suppose 51.2 g of mercury(II)oxide is placed in a sealed 3.00-L vessel at 700 K.What is the partial pressure of oxygen gas at equilibrium? (R = 0.0821 L · atm/(K · mol))</strong> A) 0.075 atm B) 0.0056 atm C) 4.5 atm D) 19 atm E) 2.3 atm <div style=padding-top: 35px>  2Hg(l)+ O2(g)
Suppose 51.2 g of mercury(II)oxide is placed in a sealed 3.00-L vessel at 700 K.What is the partial pressure of oxygen gas at equilibrium? (R = 0.0821 L · atm/(K · mol))

A) 0.075 atm
B) 0.0056 atm
C) 4.5 atm
D) 19 atm
E) 2.3 atm
Question
For the equilibrium PCl5(g)  <strong>For the equilibrium PCl<sub>5</sub>(g)   PCl<sub>3</sub>(g)+ Cl<sub>2</sub>(g),K<sub>c</sub> = 2.0  \times  10<sup>1</sup> at 240°C.If pure PCl<sub>5</sub> is placed in a 1.00-L container and allowed to come to equilibrium,and the equilibrium concentration of PCl<sub>3</sub>(g)is 0.23 M,what is the equilibrium concentration of PCl<sub>5</sub>(g)?</strong> A) 0.46 M B) 0.12 M C) 0.012 M D) 0.0026 M E) 9.3 M <div style=padding-top: 35px>  PCl3(g)+ Cl2(g),Kc = 2.0 ×\times 101 at 240°C.If pure PCl5 is placed in a 1.00-L container and allowed to come to equilibrium,and the equilibrium concentration of PCl3(g)is 0.23 M,what is the equilibrium concentration of PCl5(g)?

A) 0.46 M
B) 0.12 M
C) 0.012 M
D) 0.0026 M
E) 9.3 M
Question
A 3.00-liter flask initially contains 3.00 mol of gas A and 1.50 mol of gas B.Gas A decomposes according to the following reaction:
 <strong>A 3.00-liter flask initially contains 3.00 mol of gas A and 1.50 mol of gas B.Gas A decomposes according to the following reaction:   The equilibrium concentration of gas C is 0.146 mol/L.Determine the value of the equilibrium constant,K<sub>c</sub>.</strong> A) 0.206 B) 0.163 C) 3.84  \times  10<sup>-3</sup> D) 0.516 E) none of these <div style=padding-top: 35px>
The equilibrium concentration of gas C is 0.146 mol/L.Determine the value of the equilibrium constant,Kc.

A) 0.206
B) 0.163
C) 3.84 ×\times 10-3
D) 0.516
E) none of these
Question
Consider the following equilibrium at 25°C:
2ICl(g)  <strong>Consider the following equilibrium at 25°C: 2ICl(g)   I<sub>2</sub>(g)+ Cl<sub>2</sub>(g);  \Delta H = 27 kJ; K<sub>p</sub> = 6.2  \times  10<sup>-6</sup> Which of the following would be true if the temperature were increased to 100°C? 1)The value of K<sub>p</sub> would increase. 2)The concentration of ICl(g)would increase. 3)The partial pressure of I<sub>2</sub> would increase.</strong> A) 1 only B) 2 only C) 3 only D) 1 and 2 E) 1 and 3 <div style=padding-top: 35px>  I2(g)+ Cl2(g); Δ\Delta H = 27 kJ; Kp = 6.2 ×\times 10-6
Which of the following would be true if the temperature were increased to 100°C?
1)The value of Kp would increase.
2)The concentration of ICl(g)would increase.
3)The partial pressure of I2 would increase.

A) 1 only
B) 2 only
C) 3 only
D) 1 and 2
E) 1 and 3
Question
At a given temperature,K = 0.021 for the equilibrium:
PCl5(g) <strong>At a given temperature,K = 0.021 for the equilibrium: PCl<sub>5</sub>(g)   PCl<sub>3</sub>(g)+ Cl<sub>2</sub>(g) What is K for: Cl<sub>2</sub>(g)+ PCl<sub>3</sub>(g)   PCl<sub>5</sub>(g)?</strong> A) 2300 B) 21 C) 0.00044 D) 48 E) 0.021 <div style=padding-top: 35px> PCl3(g)+ Cl2(g)
What is K for: Cl2(g)+ PCl3(g) <strong>At a given temperature,K = 0.021 for the equilibrium: PCl<sub>5</sub>(g)   PCl<sub>3</sub>(g)+ Cl<sub>2</sub>(g) What is K for: Cl<sub>2</sub>(g)+ PCl<sub>3</sub>(g)   PCl<sub>5</sub>(g)?</strong> A) 2300 B) 21 C) 0.00044 D) 48 E) 0.021 <div style=padding-top: 35px> PCl5(g)?

A) 2300
B) 21
C) 0.00044
D) 48
E) 0.021
Question
Given the equilibrium constants for the equilibria,
2NH4+(aq)+ 2H2O(l)  <strong>Given the equilibrium constants for the equilibria, 2NH<sub>4</sub><sup>+</sup>(aq)+ 2H<sub>2</sub>O(l)   2NH<sub>3</sub>(aq)+ 2H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   CH<sub>3</sub>COOH(aq)+ H<sub>2</sub>O(l)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   Determine K<sub>c</sub> for the following equilibrium. CH<sub>3</sub>COOH(aq)+ NH<sub>3</sub>(aq)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ NH<sub>4</sub><sup>+</sup>(aq)</strong> A) 3.08  \times  10<sup>4</sup> B) 3.25  \times  10<sup>-5</sup> C) 9.96  \times  10<sup>-15</sup> D) 1.00  \times  10<sup>14</sup> E) 1.75  \times  10<sup>-5</sup> <div style=padding-top: 35px>  2NH3(aq)+ 2H3O+(aq); Kc =  <strong>Given the equilibrium constants for the equilibria, 2NH<sub>4</sub><sup>+</sup>(aq)+ 2H<sub>2</sub>O(l)   2NH<sub>3</sub>(aq)+ 2H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   CH<sub>3</sub>COOH(aq)+ H<sub>2</sub>O(l)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   Determine K<sub>c</sub> for the following equilibrium. CH<sub>3</sub>COOH(aq)+ NH<sub>3</sub>(aq)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ NH<sub>4</sub><sup>+</sup>(aq)</strong> A) 3.08  \times  10<sup>4</sup> B) 3.25  \times  10<sup>-5</sup> C) 9.96  \times  10<sup>-15</sup> D) 1.00  \times  10<sup>14</sup> E) 1.75  \times  10<sup>-5</sup> <div style=padding-top: 35px>
CH3COOH(aq)+ H2O(l)  <strong>Given the equilibrium constants for the equilibria, 2NH<sub>4</sub><sup>+</sup>(aq)+ 2H<sub>2</sub>O(l)   2NH<sub>3</sub>(aq)+ 2H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   CH<sub>3</sub>COOH(aq)+ H<sub>2</sub>O(l)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   Determine K<sub>c</sub> for the following equilibrium. CH<sub>3</sub>COOH(aq)+ NH<sub>3</sub>(aq)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ NH<sub>4</sub><sup>+</sup>(aq)</strong> A) 3.08  \times  10<sup>4</sup> B) 3.25  \times  10<sup>-5</sup> C) 9.96  \times  10<sup>-15</sup> D) 1.00  \times  10<sup>14</sup> E) 1.75  \times  10<sup>-5</sup> <div style=padding-top: 35px>  CH3COO-(aq)+ H3O+(aq); Kc =  <strong>Given the equilibrium constants for the equilibria, 2NH<sub>4</sub><sup>+</sup>(aq)+ 2H<sub>2</sub>O(l)   2NH<sub>3</sub>(aq)+ 2H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   CH<sub>3</sub>COOH(aq)+ H<sub>2</sub>O(l)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   Determine K<sub>c</sub> for the following equilibrium. CH<sub>3</sub>COOH(aq)+ NH<sub>3</sub>(aq)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ NH<sub>4</sub><sup>+</sup>(aq)</strong> A) 3.08  \times  10<sup>4</sup> B) 3.25  \times  10<sup>-5</sup> C) 9.96  \times  10<sup>-15</sup> D) 1.00  \times  10<sup>14</sup> E) 1.75  \times  10<sup>-5</sup> <div style=padding-top: 35px>
Determine Kc for the following equilibrium.
CH3COOH(aq)+ NH3(aq)  <strong>Given the equilibrium constants for the equilibria, 2NH<sub>4</sub><sup>+</sup>(aq)+ 2H<sub>2</sub>O(l)   2NH<sub>3</sub>(aq)+ 2H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   CH<sub>3</sub>COOH(aq)+ H<sub>2</sub>O(l)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   Determine K<sub>c</sub> for the following equilibrium. CH<sub>3</sub>COOH(aq)+ NH<sub>3</sub>(aq)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ NH<sub>4</sub><sup>+</sup>(aq)</strong> A) 3.08  \times  10<sup>4</sup> B) 3.25  \times  10<sup>-5</sup> C) 9.96  \times  10<sup>-15</sup> D) 1.00  \times  10<sup>14</sup> E) 1.75  \times  10<sup>-5</sup> <div style=padding-top: 35px>  CH3COO-(aq)+ NH4+(aq)

A) 3.08 ×\times 104
B) 3.25 ×\times 10-5
C) 9.96 ×\times 10-15
D) 1.00 ×\times 1014
E) 1.75 ×\times 10-5
Question
Assume that the following  endothermic \underline{\text{ endothermic }} chemical reaction is at equilibrium.
C(s)+ H2O(g)  <strong>Assume that the following  \underline{\text{ endothermic  }} chemical reaction is at equilibrium. C(s)+ H<sub>2</sub>O(g)   H<sub>2</sub>(g)+ CO(g) Which of the following statements is/are CORRECT? 1)Increasing the concentration of H<sub>2</sub>(g)will cause the reaction to proceed in the backward direction,increasing the equilibrium concentration of H<sub>2</sub>O(g). 2)Decreasing the temperature will cause the reaction to proceed in the forward direction,increasing the equilibrium concentration of CO(g). 3)Increasing the amount of C(s)will cause the reaction to proceed in the forward direction,increasing the equilibrium concentration of CO(g).</strong> A) 1 only B) 2 only C) 3 only D) 1 and 2 E) 1,2,and 3 <div style=padding-top: 35px>  H2(g)+ CO(g)
Which of the following statements is/are CORRECT?
1)Increasing the concentration of H2(g)will cause the reaction to proceed in the backward direction,increasing the equilibrium concentration of H2O(g).
2)Decreasing the temperature will cause the reaction to proceed in the forward direction,increasing the equilibrium concentration of CO(g).
3)Increasing the amount of C(s)will cause the reaction to proceed in the forward direction,increasing the equilibrium concentration of CO(g).

A) 1 only
B) 2 only
C) 3 only
D) 1 and 2
E) 1,2,and 3
Question
For the reaction N2O4(g)  <strong>For the reaction N<sub>2</sub>O<sub>4</sub>(g)   2NO<sub>2</sub>(g),K<sub>p</sub> = 0.148 at a temperature of 298 K.What is K<sub>p</sub> for the following reaction? 14NO<sub>2</sub>(g)   7N<sub>2</sub>O<sub>4</sub>(g)</strong> A) 6.43  \times  10<sup>5</sup> B) 1.04 C) 1.56  \times  10<sup>-6</sup> D) 0.965 E) 6.76 <div style=padding-top: 35px>  2NO2(g),Kp = 0.148 at a temperature of 298 K.What is Kp for the following reaction?
14NO2(g)  <strong>For the reaction N<sub>2</sub>O<sub>4</sub>(g)   2NO<sub>2</sub>(g),K<sub>p</sub> = 0.148 at a temperature of 298 K.What is K<sub>p</sub> for the following reaction? 14NO<sub>2</sub>(g)   7N<sub>2</sub>O<sub>4</sub>(g)</strong> A) 6.43  \times  10<sup>5</sup> B) 1.04 C) 1.56  \times  10<sup>-6</sup> D) 0.965 E) 6.76 <div style=padding-top: 35px>  7N2O4(g)

A) 6.43 ×\times 105
B) 1.04
C) 1.56 ×\times 10-6
D) 0.965
E) 6.76
Question
If Kc = 0.152 for A2 + 2B <strong>If K<sub>c</sub> = 0.152 for A<sub>2</sub> + 2B   2AB,what is the value of K<sub>c</sub> for the reaction 4AB   2A<sub>2</sub> + 4B?</strong> A) 0.152 B) 0.304 C) 43.3 D) -0.152 E) 3.29 <div style=padding-top: 35px> 2AB,what is the value of Kc for the reaction
4AB <strong>If K<sub>c</sub> = 0.152 for A<sub>2</sub> + 2B   2AB,what is the value of K<sub>c</sub> for the reaction 4AB   2A<sub>2</sub> + 4B?</strong> A) 0.152 B) 0.304 C) 43.3 D) -0.152 E) 3.29 <div style=padding-top: 35px> 2A2 + 4B?

A) 0.152
B) 0.304
C) 43.3
D) -0.152
E) 3.29
Question
The symbol Q is called the ________.
Question
The thermochemical equation for the formation of ammonia from elemental nitrogen and hydrogen is as follows.
N2(g)+ 3 H2(g)  <strong>The thermochemical equation for the formation of ammonia from elemental nitrogen and hydrogen is as follows. N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)   2  NH<sub>3</sub>(g) ~~~~~~~~   ~~~~~~~~   \Delta H = -92.2 kJ Given a system that is initially at equilibrium,which of the following actions cause the reaction to proceed to the left?</strong> A) adding N<sub>2</sub>(g) B) removing NH<sub>3</sub>(g) C) adding a catalyst D) decreasing the temperature E) removing H<sub>2</sub>(g) <div style=padding-top: 35px>  2 NH3(g)         ~~~~~~~~         ~~~~~~~~ Δ\Delta H = -92.2 kJ
Given a system that is initially at equilibrium,which of the following actions cause the reaction to proceed to the left?

A) adding N2(g)
B) removing NH3(g)
C) adding a catalyst
D) decreasing the temperature
E) removing H2(g)
Question
Given the following chemical equilibria,
N2(g)+ O2(g)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>  2 NO(g)         ~~~~~~~~         ~~~~~~~~ K1
N2(g)+ 3 H2(g)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>  2 NH3(g)         ~~~~~~~~      ~~ ~~~ K2
H2(g)+ 1/2 O2(g)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>  H2O(g)         ~~~~~~~~      ~~~~ ~ K3
Determine the method used to calculate the equilibrium constant for the reaction below.
4 NH3(g)+ 5 O2(g)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>  4 NO(g)+ 6 H2O(g)         ~~~~~~~~ K c

A)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
B)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
C)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
D)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
E)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)   <div style=padding-top: 35px>
Question
A flask contains the following chemical system at equilibrium.
CuCO3(s) <strong>A flask contains the following chemical system at equilibrium. CuCO<sub>3</sub>(s)   Cu<sup>2+</sup>(aq)+ 2 CO<sub>3</sub><sup>2-</sup>(aq) Addition of which of the following substances will increase the solubility of CuCO<sub>3</sub>(s)in water? 1)aqueous hydrochloric acid 2)aqueous sodium carbonate 3)solid copper(II)carbonate</strong> A) 1 only B) 2 only C) 3 only D) 1 and 3 E) 1,2,and 3 <div style=padding-top: 35px> Cu2+(aq)+ 2 CO32-(aq)
Addition of which of the following substances will increase the solubility of CuCO3(s)in water?
1)aqueous hydrochloric acid
2)aqueous sodium carbonate
3)solid copper(II)carbonate

A) 1 only
B) 2 only
C) 3 only
D) 1 and 3
E) 1,2,and 3
Question
Which of the following equilibria would not be affected by pressure changes at constant temperature?

A) CO2(g)+ H2(g) <strong>Which of the following equilibria would not be affected by pressure changes at constant temperature?</strong> A) CO<sub>2</sub>(g)+ H<sub>2</sub>(g)   CO(g)+  H<sub>2</sub>O(g) B) CO(g)+   O<sub>2</sub>(g)   CO<sub>2</sub>(g) C) 2Hg(l)+ O<sub>2</sub>(g)   2HgO(s) D) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(l) E) CaCO<sub>3</sub>(s)   CaO(s)+ CO<sub>2</sub>(g) <div style=padding-top: 35px> CO(g)+ H2O(g)
B) CO(g)+ <strong>Which of the following equilibria would not be affected by pressure changes at constant temperature?</strong> A) CO<sub>2</sub>(g)+ H<sub>2</sub>(g)   CO(g)+  H<sub>2</sub>O(g) B) CO(g)+   O<sub>2</sub>(g)   CO<sub>2</sub>(g) C) 2Hg(l)+ O<sub>2</sub>(g)   2HgO(s) D) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(l) E) CaCO<sub>3</sub>(s)   CaO(s)+ CO<sub>2</sub>(g) <div style=padding-top: 35px> O2(g) <strong>Which of the following equilibria would not be affected by pressure changes at constant temperature?</strong> A) CO<sub>2</sub>(g)+ H<sub>2</sub>(g)   CO(g)+  H<sub>2</sub>O(g) B) CO(g)+   O<sub>2</sub>(g)   CO<sub>2</sub>(g) C) 2Hg(l)+ O<sub>2</sub>(g)   2HgO(s) D) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(l) E) CaCO<sub>3</sub>(s)   CaO(s)+ CO<sub>2</sub>(g) <div style=padding-top: 35px> CO2(g)
C) 2Hg(l)+ O2(g) <strong>Which of the following equilibria would not be affected by pressure changes at constant temperature?</strong> A) CO<sub>2</sub>(g)+ H<sub>2</sub>(g)   CO(g)+  H<sub>2</sub>O(g) B) CO(g)+   O<sub>2</sub>(g)   CO<sub>2</sub>(g) C) 2Hg(l)+ O<sub>2</sub>(g)   2HgO(s) D) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(l) E) CaCO<sub>3</sub>(s)   CaO(s)+ CO<sub>2</sub>(g) <div style=padding-top: 35px> 2HgO(s)
D) 2H2(g)+ O2(g) <strong>Which of the following equilibria would not be affected by pressure changes at constant temperature?</strong> A) CO<sub>2</sub>(g)+ H<sub>2</sub>(g)   CO(g)+  H<sub>2</sub>O(g) B) CO(g)+   O<sub>2</sub>(g)   CO<sub>2</sub>(g) C) 2Hg(l)+ O<sub>2</sub>(g)   2HgO(s) D) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(l) E) CaCO<sub>3</sub>(s)   CaO(s)+ CO<sub>2</sub>(g) <div style=padding-top: 35px> 2H2O(l)
E) CaCO3(s) <strong>Which of the following equilibria would not be affected by pressure changes at constant temperature?</strong> A) CO<sub>2</sub>(g)+ H<sub>2</sub>(g)   CO(g)+  H<sub>2</sub>O(g) B) CO(g)+   O<sub>2</sub>(g)   CO<sub>2</sub>(g) C) 2Hg(l)+ O<sub>2</sub>(g)   2HgO(s) D) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(l) E) CaCO<sub>3</sub>(s)   CaO(s)+ CO<sub>2</sub>(g) <div style=padding-top: 35px> CaO(s)+ CO2(g)
Question
Consider the following equilibrium:
PCl5(g)  <strong>Consider the following equilibrium: PCl<sub>5</sub>(g)   PCl<sub>3</sub>(g)+ Cl<sub>2</sub>(g);  ~~~~~~~~   \Delta H = 92 kJ The concentration of PCl<sub>3</sub> at equilibrium may be increased by</strong> A) decreasing the temperature. B) adding Cl<sub>2</sub> to the system. C) adding PCl<sub>5</sub> to the system. D) increasing the pressure. E) adding a catalyst. <div style=padding-top: 35px>  PCl3(g)+ Cl2(g);         ~~~~~~~~ Δ\Delta H = 92 kJ
The concentration of PCl3 at equilibrium may be increased by

A) decreasing the temperature.
B) adding Cl2 to the system.
C) adding PCl5 to the system.
D) increasing the pressure.
E) adding a catalyst.
Question
Given the following equilibria,
PbBr2(s)  <strong>Given the following equilibria, PbBr<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 Br<sup>-</sup>(aq)  ~~~~~~~~   ~~~~~~~~~~~~  K<sub>1</sub> = 6.6  \times 0 10<sup>-6</sup> Pb(OH)<sub>2</sub>(s)    Pb<sup>2+</sup>(aq)+ 2 OH<sup>-</sup>(aq) ~~~~~~~~   ~~~~~~~~  K<sub>2</sub> = 1.4  \times  10<sup>-15</sup> Determine the equilibrium constant,K<sub>c</sub>,for the following reaction. PbBr<sub>2</sub>(s)+ 2 OH<sup>-</sup>(aq)   Pb(OH)<sub>2</sub>(s)+ 2 Br<sup>-</sup>(aq)</strong> A) 9.2  \times  10<sup>-21</sup> B) 2.1  \times  10<sup>-10</sup> C) 6.6  \times  10<sup>-6</sup> D) 4.7  \times  10<sup>9</sup> E) 1.1  \times  10<sup>20</sup> <div style=padding-top: 35px>  Pb2+(aq)+ 2 Br-(aq)         ~~~~~~~~             ~~~~~~~~~~~~ K1 = 6.6 ×\times 0 10-6
Pb(OH)2(s)  <strong>Given the following equilibria, PbBr<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 Br<sup>-</sup>(aq)  ~~~~~~~~   ~~~~~~~~~~~~  K<sub>1</sub> = 6.6  \times 0 10<sup>-6</sup> Pb(OH)<sub>2</sub>(s)    Pb<sup>2+</sup>(aq)+ 2 OH<sup>-</sup>(aq) ~~~~~~~~   ~~~~~~~~  K<sub>2</sub> = 1.4  \times  10<sup>-15</sup> Determine the equilibrium constant,K<sub>c</sub>,for the following reaction. PbBr<sub>2</sub>(s)+ 2 OH<sup>-</sup>(aq)   Pb(OH)<sub>2</sub>(s)+ 2 Br<sup>-</sup>(aq)</strong> A) 9.2  \times  10<sup>-21</sup> B) 2.1  \times  10<sup>-10</sup> C) 6.6  \times  10<sup>-6</sup> D) 4.7  \times  10<sup>9</sup> E) 1.1  \times  10<sup>20</sup> <div style=padding-top: 35px>  Pb2+(aq)+ 2 OH-(aq)         ~~~~~~~~         ~~~~~~~~ K2 = 1.4 ×\times 10-15
Determine the equilibrium constant,Kc,for the following reaction.
PbBr2(s)+ 2 OH-(aq)  <strong>Given the following equilibria, PbBr<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 Br<sup>-</sup>(aq)  ~~~~~~~~   ~~~~~~~~~~~~  K<sub>1</sub> = 6.6  \times 0 10<sup>-6</sup> Pb(OH)<sub>2</sub>(s)    Pb<sup>2+</sup>(aq)+ 2 OH<sup>-</sup>(aq) ~~~~~~~~   ~~~~~~~~  K<sub>2</sub> = 1.4  \times  10<sup>-15</sup> Determine the equilibrium constant,K<sub>c</sub>,for the following reaction. PbBr<sub>2</sub>(s)+ 2 OH<sup>-</sup>(aq)   Pb(OH)<sub>2</sub>(s)+ 2 Br<sup>-</sup>(aq)</strong> A) 9.2  \times  10<sup>-21</sup> B) 2.1  \times  10<sup>-10</sup> C) 6.6  \times  10<sup>-6</sup> D) 4.7  \times  10<sup>9</sup> E) 1.1  \times  10<sup>20</sup> <div style=padding-top: 35px>  Pb(OH)2(s)+ 2 Br-(aq)

A) 9.2 ×\times 10-21
B) 2.1 ×\times 10-10
C) 6.6 ×\times 10-6
D) 4.7 ×\times 109
E) 1.1 ×\times 1020
Question
Given the following equilibria,
Ni2+(aq)+ 2 OH-(aq)  <strong>Given the following equilibria, Ni<sup>2+</sup>(aq)+ 2 OH<sup>-</sup>(aq)   Ni(OH)<sub>2</sub>(s) ~~~~~~~~  K<sub>1</sub> = 1.8  \times  10<sup>15</sup> Ni<sup>2+</sup>(aq)+ 4 CN<sup>-</sup>(aq)   Ni(CN)<sub>4</sub><sup>2-</sup>(aq) ~~  ~~   K<sub>2</sub> = 2.0  \times 10<sup>31</sup> Determine the equilibrium constant,K<sub>c</sub>,for the following reaction. Ni(OH)<sub>2</sub>(s)+ 4 CN<sup>-</sup>(aq)   Ni(CN)<sub>4</sub><sup>2-</sup>(aq)+ 2 OH<sup>-</sup>(aq)</strong> A) 2.8  \times  10<sup>-47</sup> B) 9.0  \times  10<sup>-17</sup> C) 1.8  \times  10<sup>15</sup> D) 1.1  \times  10<sup>16</sup> E) 3.6  \times  10<sup>46</sup> <div style=padding-top: 35px>  Ni(OH)2(s)         ~~~~~~~~ K1 = 1.8 ×\times 1015
Ni2+(aq)+ 4 CN-(aq)  <strong>Given the following equilibria, Ni<sup>2+</sup>(aq)+ 2 OH<sup>-</sup>(aq)   Ni(OH)<sub>2</sub>(s) ~~~~~~~~  K<sub>1</sub> = 1.8  \times  10<sup>15</sup> Ni<sup>2+</sup>(aq)+ 4 CN<sup>-</sup>(aq)   Ni(CN)<sub>4</sub><sup>2-</sup>(aq) ~~  ~~   K<sub>2</sub> = 2.0  \times 10<sup>31</sup> Determine the equilibrium constant,K<sub>c</sub>,for the following reaction. Ni(OH)<sub>2</sub>(s)+ 4 CN<sup>-</sup>(aq)   Ni(CN)<sub>4</sub><sup>2-</sup>(aq)+ 2 OH<sup>-</sup>(aq)</strong> A) 2.8  \times  10<sup>-47</sup> B) 9.0  \times  10<sup>-17</sup> C) 1.8  \times  10<sup>15</sup> D) 1.1  \times  10<sup>16</sup> E) 3.6  \times  10<sup>46</sup> <div style=padding-top: 35px>  Ni(CN)42-(aq)     ~~ ~~ K2 = 2.0 ×\times 1031
Determine the equilibrium constant,Kc,for the following reaction.
Ni(OH)2(s)+ 4 CN-(aq)  <strong>Given the following equilibria, Ni<sup>2+</sup>(aq)+ 2 OH<sup>-</sup>(aq)   Ni(OH)<sub>2</sub>(s) ~~~~~~~~  K<sub>1</sub> = 1.8  \times  10<sup>15</sup> Ni<sup>2+</sup>(aq)+ 4 CN<sup>-</sup>(aq)   Ni(CN)<sub>4</sub><sup>2-</sup>(aq) ~~  ~~   K<sub>2</sub> = 2.0  \times 10<sup>31</sup> Determine the equilibrium constant,K<sub>c</sub>,for the following reaction. Ni(OH)<sub>2</sub>(s)+ 4 CN<sup>-</sup>(aq)   Ni(CN)<sub>4</sub><sup>2-</sup>(aq)+ 2 OH<sup>-</sup>(aq)</strong> A) 2.8  \times  10<sup>-47</sup> B) 9.0  \times  10<sup>-17</sup> C) 1.8  \times  10<sup>15</sup> D) 1.1  \times  10<sup>16</sup> E) 3.6  \times  10<sup>46</sup> <div style=padding-top: 35px>  Ni(CN)42-(aq)+ 2 OH-(aq)

A) 2.8 ×\times 10-47
B) 9.0 ×\times 10-17
C) 1.8 ×\times 1015
D) 1.1 ×\times 1016
E) 3.6 ×\times 1046
Question
In which of the following reactions does a decrease in the volume of the reaction vessel at constant temperature favor formation of the products?

A) 2H2(g)+ O2(g) <strong>In which of the following reactions does a decrease in the volume of the reaction vessel at constant temperature favor formation of the products?</strong> A) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(g) B) NO<sub>2</sub>(g)+ CO(g)   NO(g)+ CO<sub>2</sub>(g) C) H<sub>2</sub>(g)+ I<sub>2</sub>(g)   2HI(g) D) 2O<sub>3</sub>(g)   3O<sub>2</sub>(g) E) MgCO<sub>3</sub>(s)   MgO(s)+ CO<sub>2</sub>(g) <div style=padding-top: 35px> 2H2O(g)
B) NO2(g)+ CO(g) <strong>In which of the following reactions does a decrease in the volume of the reaction vessel at constant temperature favor formation of the products?</strong> A) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(g) B) NO<sub>2</sub>(g)+ CO(g)   NO(g)+ CO<sub>2</sub>(g) C) H<sub>2</sub>(g)+ I<sub>2</sub>(g)   2HI(g) D) 2O<sub>3</sub>(g)   3O<sub>2</sub>(g) E) MgCO<sub>3</sub>(s)   MgO(s)+ CO<sub>2</sub>(g) <div style=padding-top: 35px> NO(g)+ CO2(g)
C) H2(g)+ I2(g) <strong>In which of the following reactions does a decrease in the volume of the reaction vessel at constant temperature favor formation of the products?</strong> A) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(g) B) NO<sub>2</sub>(g)+ CO(g)   NO(g)+ CO<sub>2</sub>(g) C) H<sub>2</sub>(g)+ I<sub>2</sub>(g)   2HI(g) D) 2O<sub>3</sub>(g)   3O<sub>2</sub>(g) E) MgCO<sub>3</sub>(s)   MgO(s)+ CO<sub>2</sub>(g) <div style=padding-top: 35px> 2HI(g)
D) 2O3(g) <strong>In which of the following reactions does a decrease in the volume of the reaction vessel at constant temperature favor formation of the products?</strong> A) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(g) B) NO<sub>2</sub>(g)+ CO(g)   NO(g)+ CO<sub>2</sub>(g) C) H<sub>2</sub>(g)+ I<sub>2</sub>(g)   2HI(g) D) 2O<sub>3</sub>(g)   3O<sub>2</sub>(g) E) MgCO<sub>3</sub>(s)   MgO(s)+ CO<sub>2</sub>(g) <div style=padding-top: 35px> 3O2(g)
E) MgCO3(s) <strong>In which of the following reactions does a decrease in the volume of the reaction vessel at constant temperature favor formation of the products?</strong> A) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(g) B) NO<sub>2</sub>(g)+ CO(g)   NO(g)+ CO<sub>2</sub>(g) C) H<sub>2</sub>(g)+ I<sub>2</sub>(g)   2HI(g) D) 2O<sub>3</sub>(g)   3O<sub>2</sub>(g) E) MgCO<sub>3</sub>(s)   MgO(s)+ CO<sub>2</sub>(g) <div style=padding-top: 35px> MgO(s)+ CO2(g)
Question
Assume that the following chemical reaction is at equilibrium.
2 ICl(g)  <strong>Assume that the following chemical reaction is at equilibrium. 2 ICl(g)   I<sub>2</sub>(g)+ Cl<sub>2</sub>(g) ~~~~~~~~   ~~~~~~~~   \Delta H<sup> \circ </sup> = +26.9 kJ  At 25 <sup> \circ </sup>C,K<sub>p</sub> = 2.0  \times  10<sup>5</sup>.If the temperature is increase to 45 <sup> \circ </sup>C,which statement applies?</strong> A) K<sub>p</sub> will decrease and the reaction will proceed in the backward direction. B) K<sub>p</sub> will decrease and the reaction will proceed in the forward direction. C) K<sub>p</sub> will remain unchanged and the reaction will proceed in the forward direction. D) K<sub>p</sub> will increase and the reaction will proceed in the backward direction. E) K<sub>p</sub> will increase and the reaction will proceed in the forward direction. <div style=padding-top: 35px>  I2(g)+ Cl2(g)         ~~~~~~~~         ~~~~~~~~ Δ\Delta H \circ = +26.9 kJ

At 25 \circ C,Kp = 2.0 ×\times 105.If the temperature is increase to 45 \circ C,which statement applies?

A) Kp will decrease and the reaction will proceed in the backward direction.
B) Kp will decrease and the reaction will proceed in the forward direction.
C) Kp will remain unchanged and the reaction will proceed in the forward direction.
D) Kp will increase and the reaction will proceed in the backward direction.
E) Kp will increase and the reaction will proceed in the forward direction.
Question
When the pressure of an equilibrium mixture of SO2,O2,and SO3 is doubled at constant temperature,what the effect on Kp?
2SO2(g)+ O2(g) <strong>When the pressure of an equilibrium mixture of SO<sub>2</sub>,O<sub>2</sub>,and SO<sub>3</sub> is doubled at constant temperature,what the effect on K<sub>p</sub>? 2SO<sub>2</sub>(g)+ O<sub>2</sub>(g)   2SO<sub>3</sub>(g)</strong> A) K<sub>p </sub>is halved. B) K<sub>p </sub>is doubled. C) K<sub>p </sub>is unchanged. D) K<sub>p </sub>is tripled. E) K<sub>p </sub>is decreased by a third. <div style=padding-top: 35px> 2SO3(g)

A) Kp is halved.
B) Kp is doubled.
C) Kp is unchanged.
D) Kp is tripled.
E) Kp is decreased by a third.
Question
In 1913,the Haber-Bosch process was patented.The product of the Haber-Bosch process is ________.
Question
Given the equilibrium constants for the following reactions:
4Cu(s)+ O2(g) <strong>Given the equilibrium constants for the following reactions: 4Cu(s)+ O<sub>2</sub>(g)   2Cu<sub>2</sub>O(s),K<sub>1</sub> 4CuO(s)   2Cu<sub>2</sub>O(s)+ O<sub>2</sub>(g),K<sub>2</sub> What is K for the system 2Cu(s)+ O<sub>2</sub>(g)   2CuO(s) Equivalent to?</strong> A)   B)   C) (K<sub>1</sub>)(K<sub>2</sub>) D)   E)   <div style=padding-top: 35px> 2Cu2O(s),K1
4CuO(s) <strong>Given the equilibrium constants for the following reactions: 4Cu(s)+ O<sub>2</sub>(g)   2Cu<sub>2</sub>O(s),K<sub>1</sub> 4CuO(s)   2Cu<sub>2</sub>O(s)+ O<sub>2</sub>(g),K<sub>2</sub> What is K for the system 2Cu(s)+ O<sub>2</sub>(g)   2CuO(s) Equivalent to?</strong> A)   B)   C) (K<sub>1</sub>)(K<sub>2</sub>) D)   E)   <div style=padding-top: 35px> 2Cu2O(s)+ O2(g),K2
What is K for the system
2Cu(s)+ O2(g) <strong>Given the equilibrium constants for the following reactions: 4Cu(s)+ O<sub>2</sub>(g)   2Cu<sub>2</sub>O(s),K<sub>1</sub> 4CuO(s)   2Cu<sub>2</sub>O(s)+ O<sub>2</sub>(g),K<sub>2</sub> What is K for the system 2Cu(s)+ O<sub>2</sub>(g)   2CuO(s) Equivalent to?</strong> A)   B)   C) (K<sub>1</sub>)(K<sub>2</sub>) D)   E)   <div style=padding-top: 35px> 2CuO(s)
Equivalent to?

A) <strong>Given the equilibrium constants for the following reactions: 4Cu(s)+ O<sub>2</sub>(g)   2Cu<sub>2</sub>O(s),K<sub>1</sub> 4CuO(s)   2Cu<sub>2</sub>O(s)+ O<sub>2</sub>(g),K<sub>2</sub> What is K for the system 2Cu(s)+ O<sub>2</sub>(g)   2CuO(s) Equivalent to?</strong> A)   B)   C) (K<sub>1</sub>)(K<sub>2</sub>) D)   E)   <div style=padding-top: 35px>
B) <strong>Given the equilibrium constants for the following reactions: 4Cu(s)+ O<sub>2</sub>(g)   2Cu<sub>2</sub>O(s),K<sub>1</sub> 4CuO(s)   2Cu<sub>2</sub>O(s)+ O<sub>2</sub>(g),K<sub>2</sub> What is K for the system 2Cu(s)+ O<sub>2</sub>(g)   2CuO(s) Equivalent to?</strong> A)   B)   C) (K<sub>1</sub>)(K<sub>2</sub>) D)   E)   <div style=padding-top: 35px>
C) (K1)(K2)
D) <strong>Given the equilibrium constants for the following reactions: 4Cu(s)+ O<sub>2</sub>(g)   2Cu<sub>2</sub>O(s),K<sub>1</sub> 4CuO(s)   2Cu<sub>2</sub>O(s)+ O<sub>2</sub>(g),K<sub>2</sub> What is K for the system 2Cu(s)+ O<sub>2</sub>(g)   2CuO(s) Equivalent to?</strong> A)   B)   C) (K<sub>1</sub>)(K<sub>2</sub>) D)   E)   <div style=padding-top: 35px>
E) <strong>Given the equilibrium constants for the following reactions: 4Cu(s)+ O<sub>2</sub>(g)   2Cu<sub>2</sub>O(s),K<sub>1</sub> 4CuO(s)   2Cu<sub>2</sub>O(s)+ O<sub>2</sub>(g),K<sub>2</sub> What is K for the system 2Cu(s)+ O<sub>2</sub>(g)   2CuO(s) Equivalent to?</strong> A)   B)   C) (K<sub>1</sub>)(K<sub>2</sub>) D)   E)   <div style=padding-top: 35px>
Question
If a stress is applied to an equilibrium system,the system will respond in such a way as to relieve that stress.This is a statement of ________ principle.
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Deck 16: Principles of Reactivity: Chemical Equilibria
1
When gaseous carbon monoxide and hydrogen are combined in a sealed vessel and heated they will eventually form an equilibrium mixture of reactants and products according to the balanced chemical equilibrium below.CO(g)+ 3H2(g) <strong>When gaseous carbon monoxide and hydrogen are combined in a sealed vessel and heated they will eventually form an equilibrium mixture of reactants and products according to the balanced chemical equilibrium below.CO(g)+ 3H<sub>2</sub>(g)   CH<sub>4</sub>(g)+ H<sub>2</sub>O(g) In one such reaction 3 moles of one reactant were combined with 1 mole of the other reactant in a fixed volume vessel and heated to 1200 K.Analysis of the reaction mixture at various times gave the results below.Which component of the reaction mixture is represented by curve C?  </strong> A) hydrogen B) carbon monoxide C) either methane or water D) either hydrogen or carbon monoxide E) not enough information to decide CH4(g)+ H2O(g)
In one such reaction 3 moles of one reactant were combined with 1 mole of the other reactant in a fixed volume vessel and heated to 1200 K.Analysis of the reaction mixture at various times gave the results below.Which component of the reaction mixture is represented by curve C? <strong>When gaseous carbon monoxide and hydrogen are combined in a sealed vessel and heated they will eventually form an equilibrium mixture of reactants and products according to the balanced chemical equilibrium below.CO(g)+ 3H<sub>2</sub>(g)   CH<sub>4</sub>(g)+ H<sub>2</sub>O(g) In one such reaction 3 moles of one reactant were combined with 1 mole of the other reactant in a fixed volume vessel and heated to 1200 K.Analysis of the reaction mixture at various times gave the results below.Which component of the reaction mixture is represented by curve C?  </strong> A) hydrogen B) carbon monoxide C) either methane or water D) either hydrogen or carbon monoxide E) not enough information to decide

A) hydrogen
B) carbon monoxide
C) either methane or water
D) either hydrogen or carbon monoxide
E) not enough information to decide
either methane or water
2
Ozone is formed from oxygen.3 O2(g)  <strong>Ozone is formed from oxygen.3 O<sub>2</sub>(g)   2 O<sub>3</sub>(g) Calculate the value of K<sub>p</sub>,given that K<sub>c</sub> = 2.5  \times 10<sup>-29</sup> at 298 K.(R = 0.08206 L.atm/mol.K)</strong> A) 1.0  \times  10<sup>-30</sup> B) 2.1  \times  10<sup>-30</sup> C) 2.5  \times  10<sup>-29</sup> D) 3.3  \times  10<sup>-28</sup> E) 6.1  \times  10<sup>-28</sup>  2 O3(g)
Calculate the value of Kp,given that Kc = 2.5 ×\times 10-29 at 298 K.(R = 0.08206 L.atm/mol.K)

A) 1.0 ×\times 10-30
B) 2.1 ×\times 10-30
C) 2.5 ×\times 10-29
D) 3.3 ×\times 10-28
E) 6.1 ×\times 10-28
1.0 ×\times 10-30
3
Write the expression for K for the reaction below.
<strong>Write the expression for K for the reaction below.  </strong> A)   B)   C)   D)   E)

A) <strong>Write the expression for K for the reaction below.  </strong> A)   B)   C)   D)   E)
B) <strong>Write the expression for K for the reaction below.  </strong> A)   B)   C)   D)   E)
C) <strong>Write the expression for K for the reaction below.  </strong> A)   B)   C)   D)   E)
D) <strong>Write the expression for K for the reaction below.  </strong> A)   B)   C)   D)   E)
E) <strong>Write the expression for K for the reaction below.  </strong> A)   B)   C)   D)   E)
4
Which of the following statements is/are CORRECT?
1)For a chemical system,if the reaction quotient (Q)is greater than K,reactant must be converted to products to reach equilibrium.
2)For a chemical system at equilibrium,the forward and reverse rates of reaction are equal.
3)For a chemical system at equilibrium,the concentrations of products divided by the concentrations of reactants equals one.

A) 1 only
B) 2 only
C) 3 only
D) 1 and 2
E) 1,2,and 3
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5
For the reaction NO(g)+ ½ O2(g)  <strong>For the reaction NO(g)+ ½ O<sub>2</sub>(g)   NO<sub>2</sub>(g)at 750°C,what is the relationship between K<sub>c</sub> and K<sub>p</sub>?</strong> A) K<sub>c</sub> = K<sub>p</sub> B) K<sub>c</sub> = K<sub>p </sub> \times  (RT)<sup>-½</sup> C) K<sub>c</sub> = K<sub>p</sub> = 1.0 D) K<sub>c</sub> = K<sub>p </sub> \times  (RT)<sup>¾</sup> E) K<sub>c</sub> = K<sub>p </sub> \times  (RT)<sup>½</sup>  NO2(g)at 750°C,what is the relationship between Kc and Kp?

A) Kc = Kp
B) Kc = Kp ×\times (RT)
C) Kc = Kp = 1.0
D) Kc = Kp ×\times (RT)¾
E) Kc = Kp ×\times (RT)½
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6
Write a balanced chemical equation which corresponds to the following equilibrium constant expression. <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) PbF<sub>2</sub>(aq)   Pb(s)+ F<sub>2</sub>(aq) B) PbF<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq) C) Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq)   PbF<sub>2</sub>(s) D) Pb(s)+ F<sub>2</sub>(aq)   PbF<sub>2</sub>(aq) E) PbF<sup>+</sup>(aq)+ F<sup>-</sup>(aq)   PbF<sub>2</sub>(aq)

A) PbF2(aq) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) PbF<sub>2</sub>(aq)   Pb(s)+ F<sub>2</sub>(aq) B) PbF<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq) C) Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq)   PbF<sub>2</sub>(s) D) Pb(s)+ F<sub>2</sub>(aq)   PbF<sub>2</sub>(aq) E) PbF<sup>+</sup>(aq)+ F<sup>-</sup>(aq)   PbF<sub>2</sub>(aq) Pb(s)+ F2(aq)
B) PbF2(s) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) PbF<sub>2</sub>(aq)   Pb(s)+ F<sub>2</sub>(aq) B) PbF<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq) C) Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq)   PbF<sub>2</sub>(s) D) Pb(s)+ F<sub>2</sub>(aq)   PbF<sub>2</sub>(aq) E) PbF<sup>+</sup>(aq)+ F<sup>-</sup>(aq)   PbF<sub>2</sub>(aq) Pb2+(aq)+ 2 F-(aq)
C) Pb2+(aq)+ 2 F-(aq) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) PbF<sub>2</sub>(aq)   Pb(s)+ F<sub>2</sub>(aq) B) PbF<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq) C) Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq)   PbF<sub>2</sub>(s) D) Pb(s)+ F<sub>2</sub>(aq)   PbF<sub>2</sub>(aq) E) PbF<sup>+</sup>(aq)+ F<sup>-</sup>(aq)   PbF<sub>2</sub>(aq) PbF2(s)
D) Pb(s)+ F2(aq) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) PbF<sub>2</sub>(aq)   Pb(s)+ F<sub>2</sub>(aq) B) PbF<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq) C) Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq)   PbF<sub>2</sub>(s) D) Pb(s)+ F<sub>2</sub>(aq)   PbF<sub>2</sub>(aq) E) PbF<sup>+</sup>(aq)+ F<sup>-</sup>(aq)   PbF<sub>2</sub>(aq) PbF2(aq)
E) PbF+(aq)+ F-(aq) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) PbF<sub>2</sub>(aq)   Pb(s)+ F<sub>2</sub>(aq) B) PbF<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq) C) Pb<sup>2+</sup>(aq)+ 2 F<sup>-</sup>(aq)   PbF<sub>2</sub>(s) D) Pb(s)+ F<sub>2</sub>(aq)   PbF<sub>2</sub>(aq) E) PbF<sup>+</sup>(aq)+ F<sup>-</sup>(aq)   PbF<sub>2</sub>(aq) PbF2(aq)
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7
For which one of the following reactions does Kp equal Kc?

A) 2 CO2(g) <strong>For which one of the following reactions does K<sub>p</sub> equal K<sub>c</sub>?</strong> A) 2 CO<sub>2</sub>(g)   2 CO(g)+ O<sub>2</sub>(g) B) CH<sub>4</sub>(g)+ 2 O<sub>2</sub>(g)   CO<sub>2</sub>(g)+ 2 H<sub>2</sub>O(g) C) C(s)+ H<sub>2</sub>O(g)   H<sub>2</sub>(g)+ CO(g) D) NH<sub>3</sub>(g)   3/2 H<sub>2</sub>(g)+ 1/2 N<sub>2</sub>(g) E) 2 O<sub>3</sub>(g)   3 O<sub>2</sub>(g) 2 CO(g)+ O2(g)
B) CH4(g)+ 2 O2(g) <strong>For which one of the following reactions does K<sub>p</sub> equal K<sub>c</sub>?</strong> A) 2 CO<sub>2</sub>(g)   2 CO(g)+ O<sub>2</sub>(g) B) CH<sub>4</sub>(g)+ 2 O<sub>2</sub>(g)   CO<sub>2</sub>(g)+ 2 H<sub>2</sub>O(g) C) C(s)+ H<sub>2</sub>O(g)   H<sub>2</sub>(g)+ CO(g) D) NH<sub>3</sub>(g)   3/2 H<sub>2</sub>(g)+ 1/2 N<sub>2</sub>(g) E) 2 O<sub>3</sub>(g)   3 O<sub>2</sub>(g) CO2(g)+ 2 H2O(g)
C) C(s)+ H2O(g) <strong>For which one of the following reactions does K<sub>p</sub> equal K<sub>c</sub>?</strong> A) 2 CO<sub>2</sub>(g)   2 CO(g)+ O<sub>2</sub>(g) B) CH<sub>4</sub>(g)+ 2 O<sub>2</sub>(g)   CO<sub>2</sub>(g)+ 2 H<sub>2</sub>O(g) C) C(s)+ H<sub>2</sub>O(g)   H<sub>2</sub>(g)+ CO(g) D) NH<sub>3</sub>(g)   3/2 H<sub>2</sub>(g)+ 1/2 N<sub>2</sub>(g) E) 2 O<sub>3</sub>(g)   3 O<sub>2</sub>(g) H2(g)+ CO(g)
D) NH3(g) <strong>For which one of the following reactions does K<sub>p</sub> equal K<sub>c</sub>?</strong> A) 2 CO<sub>2</sub>(g)   2 CO(g)+ O<sub>2</sub>(g) B) CH<sub>4</sub>(g)+ 2 O<sub>2</sub>(g)   CO<sub>2</sub>(g)+ 2 H<sub>2</sub>O(g) C) C(s)+ H<sub>2</sub>O(g)   H<sub>2</sub>(g)+ CO(g) D) NH<sub>3</sub>(g)   3/2 H<sub>2</sub>(g)+ 1/2 N<sub>2</sub>(g) E) 2 O<sub>3</sub>(g)   3 O<sub>2</sub>(g) 3/2 H2(g)+ 1/2 N2(g)
E) 2 O3(g) <strong>For which one of the following reactions does K<sub>p</sub> equal K<sub>c</sub>?</strong> A) 2 CO<sub>2</sub>(g)   2 CO(g)+ O<sub>2</sub>(g) B) CH<sub>4</sub>(g)+ 2 O<sub>2</sub>(g)   CO<sub>2</sub>(g)+ 2 H<sub>2</sub>O(g) C) C(s)+ H<sub>2</sub>O(g)   H<sub>2</sub>(g)+ CO(g) D) NH<sub>3</sub>(g)   3/2 H<sub>2</sub>(g)+ 1/2 N<sub>2</sub>(g) E) 2 O<sub>3</sub>(g)   3 O<sub>2</sub>(g) 3 O2(g)
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8
What is the Kc expression for the following equilibrium?
<strong>What is the K<sub>c</sub> expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)

A) <strong>What is the K<sub>c</sub> expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)
B) <strong>What is the K<sub>c</sub> expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)
C) <strong>What is the K<sub>c</sub> expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)
D) <strong>What is the K<sub>c</sub> expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)
E) <strong>What is the K<sub>c</sub> expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)
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9
Write the expression for Kp for the reaction below.
<strong>Write the expression for K<sub>p</sub> for the reaction below.  </strong> A)   B)   C)   D)   E)

A) <strong>Write the expression for K<sub>p</sub> for the reaction below.  </strong> A)   B)   C)   D)   E)
B) <strong>Write the expression for K<sub>p</sub> for the reaction below.  </strong> A)   B)   C)   D)   E)
C) <strong>Write the expression for K<sub>p</sub> for the reaction below.  </strong> A)   B)   C)   D)   E)
D) <strong>Write the expression for K<sub>p</sub> for the reaction below.  </strong> A)   B)   C)   D)   E)
E) <strong>Write the expression for K<sub>p</sub> for the reaction below.  </strong> A)   B)   C)   D)   E)
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10
Which expression correctly describes the equilibrium constant Kc for the following reaction?
<strong>Which expression correctly describes the equilibrium constant K<sub>c</sub> for the following reaction?  </strong> A)   B)   C)   D)   E)

A) <strong>Which expression correctly describes the equilibrium constant K<sub>c</sub> for the following reaction?  </strong> A)   B)   C)   D)   E)
B) <strong>Which expression correctly describes the equilibrium constant K<sub>c</sub> for the following reaction?  </strong> A)   B)   C)   D)   E)
C) <strong>Which expression correctly describes the equilibrium constant K<sub>c</sub> for the following reaction?  </strong> A)   B)   C)   D)   E)
D) <strong>Which expression correctly describes the equilibrium constant K<sub>c</sub> for the following reaction?  </strong> A)   B)   C)   D)   E)
E) <strong>Which expression correctly describes the equilibrium constant K<sub>c</sub> for the following reaction?  </strong> A)   B)   C)   D)   E)
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11
What balanced equation is the following equilibrium expression derived from? <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g)

A) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) H2(g)+ <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) I2(g) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) HI(g)
B) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) HI(g) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) H2(g)+ <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) I2(g)
C) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) H2(aq)+ <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) I2(aq) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) HI(aq)
D) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) HI(aq) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) H2(aq)+ <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) I2(aq)
E) 2HI(g) <strong>What balanced equation is the following equilibrium expression derived from?  </strong> A)   H<sub>2</sub>(g)+   I<sub>2</sub>(g)     HI(g) B)   HI(g)     H<sub>2</sub>(g)+   I<sub>2</sub>(g) C)   H<sub>2</sub>(aq)+   I<sub>2</sub>(aq)     HI(aq) D)   HI(aq)     H<sub>2</sub>(aq)+   I<sub>2</sub>(aq) E) 2HI(g)   H<sub>2</sub>(g)+ I<sub>2</sub>(g) H2(g)+ I2(g)
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12
Which of the following statements is/are CORRECT?
1)Product concentrations appear in the numerator of an equilibrium constant expression.
2)A reaction favors the formation of products if K >> 1.
3)Stoichiometric coefficients are used as exponents in an equilibrium constant expression.

A) 1 only
B) 2 only
C) 3 only
D) 2 and 3
E) 1,2,and 3
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13
For which of the following equilibria does Kc = Kp?

A) N2(g)+ 3H2(g) <strong>For which of the following equilibria does K<sub>c</sub> = K<sub>p</sub>?</strong> A) N<sub>2</sub>(g)+ 3H<sub>2</sub>(g)   2NH<sub>3</sub>(g) B) CO(g)+ H<sub>2</sub>O(g)   CO<sub>2</sub>(g)+ H<sub>2</sub>(g) C) CO(g)+ 3H<sub>2</sub>(g)   CH<sub>4</sub>(g)+ H<sub>2</sub>O(g) D) CaO(s)+ CO<sub>2</sub>(g)   CaCO<sub>3</sub>(s) E) HBr(g)   ½H<sub>2</sub>(g)+ ½Br<sub>2</sub>(l) 2NH3(g)
B) CO(g)+ H2O(g) <strong>For which of the following equilibria does K<sub>c</sub> = K<sub>p</sub>?</strong> A) N<sub>2</sub>(g)+ 3H<sub>2</sub>(g)   2NH<sub>3</sub>(g) B) CO(g)+ H<sub>2</sub>O(g)   CO<sub>2</sub>(g)+ H<sub>2</sub>(g) C) CO(g)+ 3H<sub>2</sub>(g)   CH<sub>4</sub>(g)+ H<sub>2</sub>O(g) D) CaO(s)+ CO<sub>2</sub>(g)   CaCO<sub>3</sub>(s) E) HBr(g)   ½H<sub>2</sub>(g)+ ½Br<sub>2</sub>(l) CO2(g)+ H2(g)
C) CO(g)+ 3H2(g) <strong>For which of the following equilibria does K<sub>c</sub> = K<sub>p</sub>?</strong> A) N<sub>2</sub>(g)+ 3H<sub>2</sub>(g)   2NH<sub>3</sub>(g) B) CO(g)+ H<sub>2</sub>O(g)   CO<sub>2</sub>(g)+ H<sub>2</sub>(g) C) CO(g)+ 3H<sub>2</sub>(g)   CH<sub>4</sub>(g)+ H<sub>2</sub>O(g) D) CaO(s)+ CO<sub>2</sub>(g)   CaCO<sub>3</sub>(s) E) HBr(g)   ½H<sub>2</sub>(g)+ ½Br<sub>2</sub>(l) CH4(g)+ H2O(g)
D) CaO(s)+ CO2(g) <strong>For which of the following equilibria does K<sub>c</sub> = K<sub>p</sub>?</strong> A) N<sub>2</sub>(g)+ 3H<sub>2</sub>(g)   2NH<sub>3</sub>(g) B) CO(g)+ H<sub>2</sub>O(g)   CO<sub>2</sub>(g)+ H<sub>2</sub>(g) C) CO(g)+ 3H<sub>2</sub>(g)   CH<sub>4</sub>(g)+ H<sub>2</sub>O(g) D) CaO(s)+ CO<sub>2</sub>(g)   CaCO<sub>3</sub>(s) E) HBr(g)   ½H<sub>2</sub>(g)+ ½Br<sub>2</sub>(l) CaCO3(s)
E) HBr(g) <strong>For which of the following equilibria does K<sub>c</sub> = K<sub>p</sub>?</strong> A) N<sub>2</sub>(g)+ 3H<sub>2</sub>(g)   2NH<sub>3</sub>(g) B) CO(g)+ H<sub>2</sub>O(g)   CO<sub>2</sub>(g)+ H<sub>2</sub>(g) C) CO(g)+ 3H<sub>2</sub>(g)   CH<sub>4</sub>(g)+ H<sub>2</sub>O(g) D) CaO(s)+ CO<sub>2</sub>(g)   CaCO<sub>3</sub>(s) E) HBr(g)   ½H<sub>2</sub>(g)+ ½Br<sub>2</sub>(l) ½H2(g)+ ½Br2(l)
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14
Write a balanced chemical equation which corresponds to the following equilibrium constant expression. <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)

A) HNO2(aq)+ H2O( <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) ) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) NO2-(aq)+ H3O+(aq)
B) NO2-(aq)+ H3O+(aq) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) HNO2(aq)+ H2O( <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) )
C) NO2-(aq)+ H3O+(aq) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) HNO2(aq)
D) H+(aq)+ OH-(aq) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) H2O( <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) )
E) HNO2(aq) <strong>Write a balanced chemical equation which corresponds to the following equilibrium constant expression.  </strong> A) HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   )   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) B) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq)+ H<sub>2</sub>O(   ) C) NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq)   HNO<sub>2</sub>(aq) D) H<sup>+</sup>(aq)+ OH<sup>-</sup>(aq)   H<sub>2</sub>O(   ) E) HNO<sub>2</sub>(aq)   NO<sub>2</sub><sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq) NO2-(aq)+ H3O+(aq)
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15
Given the following chemical equilibrium,
COCl2(g)  <strong>Given the following chemical equilibrium, COCl<sub>2</sub>(g)   CO(g)+ Cl<sub>2</sub>(g) Calculate the value of K<sub>c</sub>,given that K<sub>p</sub> = 6.5  \times  10<sup>11</sup> at 298 K.(R = 0.08206 L.atm/mol.K)</strong> A) 1.5  \times  10<sup>-12</sup> B) 3.8  \times  10<sup>-11</sup> C) 1.1  \times  10<sup>9</sup> D) 2.7  \times  10<sup>10</sup> E) 1.6  \times  10<sup>13</sup>
CO(g)+ Cl2(g)
Calculate the value of Kc,given that Kp = 6.5 ×\times 1011 at 298 K.(R = 0.08206 L.atm/mol.K)

A) 1.5 ×\times 10-12
B) 3.8 ×\times 10-11
C) 1.1 ×\times 109
D) 2.7 ×\times 1010
E) 1.6 ×\times 1013
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16
For which of the following reactions are the numerical values of Kp and Kc the same?
1. 2SO2(g) + O2(g) <strong>For which of the following reactions are the numerical values of Kp and Kc the same? 1. 2SO<sub>2</sub>(g) + O<sub>2</sub>(g)  2SO3(g) 2. N2(g) + O2(g)    2NO(g) 3. H<sub>2</sub>(g)+ I<sub>2</sub>(g)   2HI(g)</strong> A) 1 only B) 2 only C) 1 and 2 D) 2 and 3 E) 1,2,and 3 2SO3(g)
2. N2(g) + O2(g) 11ea8937_ab81_0f67_a16d_5b4ecfd630df_TB4499_11 2NO(g)
3. H2(g)+ I2(g) 11ea8937_ab81_0f67_a16d_5b4ecfd630df_TB4499_11 2HI(g)

A) 1 only
B) 2 only
C) 1 and 2
D) 2 and 3
E) 1,2,and 3
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17
What is the Kc equilibrium-constant expression for the following equilibrium?
<strong>What is the K<sub>c</sub> equilibrium-constant expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)

A) <strong>What is the K<sub>c</sub> equilibrium-constant expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)
B) <strong>What is the K<sub>c</sub> equilibrium-constant expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)
C) <strong>What is the K<sub>c</sub> equilibrium-constant expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)
D) <strong>What is the K<sub>c</sub> equilibrium-constant expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)
E) <strong>What is the K<sub>c</sub> equilibrium-constant expression for the following equilibrium?  </strong> A)   B)   C)   D)   E)
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18
What is the expression for Kc for the following equilibrium?
<strong>What is the expression for K<sub>c</sub> for the following equilibrium?  </strong> A)   B)   C)   D)   E)

A) <strong>What is the expression for K<sub>c</sub> for the following equilibrium?  </strong> A)   B)   C)   D)   E)
B) <strong>What is the expression for K<sub>c</sub> for the following equilibrium?  </strong> A)   B)   C)   D)   E)
C) <strong>What is the expression for K<sub>c</sub> for the following equilibrium?  </strong> A)   B)   C)   D)   E)
D) <strong>What is the expression for K<sub>c</sub> for the following equilibrium?  </strong> A)   B)   C)   D)   E)
E) <strong>What is the expression for K<sub>c</sub> for the following equilibrium?  </strong> A)   B)   C)   D)   E)
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19
Write the expression for K for the reaction of hydrofluoric acid with water.
<strong>Write the expression for K for the reaction of hydrofluoric acid with water.  </strong> A)   B)   C)   D)   E)

A) <strong>Write the expression for K for the reaction of hydrofluoric acid with water.  </strong> A)   B)   C)   D)   E)
B) <strong>Write the expression for K for the reaction of hydrofluoric acid with water.  </strong> A)   B)   C)   D)   E)
C) <strong>Write the expression for K for the reaction of hydrofluoric acid with water.  </strong> A)   B)   C)   D)   E)
D) <strong>Write the expression for K for the reaction of hydrofluoric acid with water.  </strong> A)   B)   C)   D)   E)
E) <strong>Write the expression for K for the reaction of hydrofluoric acid with water.  </strong> A)   B)   C)   D)   E)
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20
What is the balanced equation for the following equilibrium expression? <strong>What is the balanced equation for the following equilibrium expression?  </strong> A) 6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g)   6SO<sub>3</sub>(g) B) 6SO<sub>3</sub>(g)   6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g) C) 6SO<sub>3</sub>(aq)   6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq) D) 6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq)   6SO<sub>3</sub>(aq) E) SO<sub>2</sub>(g)+   O<sub>2</sub>(g)   SO<sub>3</sub>(g)

A) 6SO2(g)+ 3O2(g) <strong>What is the balanced equation for the following equilibrium expression?  </strong> A) 6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g)   6SO<sub>3</sub>(g) B) 6SO<sub>3</sub>(g)   6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g) C) 6SO<sub>3</sub>(aq)   6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq) D) 6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq)   6SO<sub>3</sub>(aq) E) SO<sub>2</sub>(g)+   O<sub>2</sub>(g)   SO<sub>3</sub>(g) 6SO3(g)
B) 6SO3(g) <strong>What is the balanced equation for the following equilibrium expression?  </strong> A) 6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g)   6SO<sub>3</sub>(g) B) 6SO<sub>3</sub>(g)   6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g) C) 6SO<sub>3</sub>(aq)   6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq) D) 6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq)   6SO<sub>3</sub>(aq) E) SO<sub>2</sub>(g)+   O<sub>2</sub>(g)   SO<sub>3</sub>(g) 6SO2(g)+ 3O2(g)
C) 6SO3(aq) <strong>What is the balanced equation for the following equilibrium expression?  </strong> A) 6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g)   6SO<sub>3</sub>(g) B) 6SO<sub>3</sub>(g)   6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g) C) 6SO<sub>3</sub>(aq)   6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq) D) 6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq)   6SO<sub>3</sub>(aq) E) SO<sub>2</sub>(g)+   O<sub>2</sub>(g)   SO<sub>3</sub>(g) 6SO2(aq)+ 3O2(aq)
D) 6SO2(aq)+ 3O2(aq) <strong>What is the balanced equation for the following equilibrium expression?  </strong> A) 6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g)   6SO<sub>3</sub>(g) B) 6SO<sub>3</sub>(g)   6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g) C) 6SO<sub>3</sub>(aq)   6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq) D) 6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq)   6SO<sub>3</sub>(aq) E) SO<sub>2</sub>(g)+   O<sub>2</sub>(g)   SO<sub>3</sub>(g) 6SO3(aq)
E) SO2(g)+ <strong>What is the balanced equation for the following equilibrium expression?  </strong> A) 6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g)   6SO<sub>3</sub>(g) B) 6SO<sub>3</sub>(g)   6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g) C) 6SO<sub>3</sub>(aq)   6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq) D) 6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq)   6SO<sub>3</sub>(aq) E) SO<sub>2</sub>(g)+   O<sub>2</sub>(g)   SO<sub>3</sub>(g) O2(g) <strong>What is the balanced equation for the following equilibrium expression?  </strong> A) 6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g)   6SO<sub>3</sub>(g) B) 6SO<sub>3</sub>(g)   6SO<sub>2</sub>(g)+ 3O<sub>2</sub>(g) C) 6SO<sub>3</sub>(aq)   6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq) D) 6SO<sub>2</sub>(aq)+ 3O<sub>2</sub>(aq)   6SO<sub>3</sub>(aq) E) SO<sub>2</sub>(g)+   O<sub>2</sub>(g)   SO<sub>3</sub>(g) SO3(g)
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21
If the reaction quotient,Q,is greater than K in a gas phase reaction,then

A) the chemical system has reached equilibrium.
B) the temperature must be increased for the reaction to proceed in the forward direction.
C) the reaction will proceed in the forward direction until equilibrium is established.
D) the reaction will proceed in the backward direction until equilibrium is established.
E) the reaction will proceed in the direction that increases the number of gas phase particles.
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22
At a high temperature,equal concentrations of 0.160 mol/L of H2(g)and I2(g)are initially present in a flask.The H2 and I2 react according to the balanced equation below.
<strong>At a high temperature,equal concentrations of 0.160 mol/L of H<sub>2</sub>(g)and I<sub>2</sub>(g)are initially present in a flask.The H<sub>2</sub> and I<sub>2</sub> react according to the balanced equation below.   When equilibrium is reached,the concentration of H<sub>2</sub>(g)has decreased to 0.036 mol/L.What is the equilibrium constant,K<sub>c</sub>,for the reaction?</strong> A) 3.4 B) 4.0 C) 12 D) 22 E) 48
When equilibrium is reached,the concentration of H2(g)has decreased to 0.036 mol/L.What is the equilibrium constant,Kc,for the reaction?

A) 3.4
B) 4.0
C) 12
D) 22
E) 48
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23
Consider the reaction
A(aq)  <strong>Consider the reaction A(aq)   2 B(aq)where K<sub>c</sub> = 4.1 at 25 <sup> \circ </sup>C.If 0.50 M A(aq)and 1.5 M B(aq)are initially present in a 1.0 L flask at 25 <sup> \circ </sup>C,what change in concentrations (if any)will occur in time?</strong> A) [A] will decrease and [B] will decrease. B) [A] will decrease and [B] will increase. C) [A] will increase and [B] will decrease. D) [A] will increase and [B] will increase. E) [A] and [B] remain unchanged.  2 B(aq)where Kc = 4.1 at 25 \circ C.If 0.50 M A(aq)and 1.5 M B(aq)are initially present in a 1.0 L flask at 25 \circ C,what change in concentrations (if any)will occur in time?

A) [A] will decrease and [B] will decrease.
B) [A] will decrease and [B] will increase.
C) [A] will increase and [B] will decrease.
D) [A] will increase and [B] will increase.
E) [A] and [B] remain unchanged.
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24
Exactly 1.0 mol N2O4 is placed in an empty 1.0-L container and allowed to reach equilibrium described by the equation N2O4(g) <strong>Exactly 1.0 mol N<sub>2</sub>O<sub>4</sub> is placed in an empty 1.0-L container and allowed to reach equilibrium described by the equation N<sub>2</sub>O<sub>4</sub>(g)   2NO<sub>2</sub>(g).If at equilibrium the N<sub>2</sub>O<sub>4</sub> is 28.0% dissociated,what is the value of the equilibrium constant,K<sub>c</sub>,for the reaction under these conditions?</strong> A) 0.44 B) 2.3 C) 0.31 D) 0.78 E) 0.11 2NO2(g).If at equilibrium the N2O4 is 28.0% dissociated,what is the value of the equilibrium constant,Kc,for the reaction under these conditions?

A) 0.44
B) 2.3
C) 0.31
D) 0.78
E) 0.11
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25
Which of the following is always true for a reaction where Kc is  <strong>Which of the following is always true for a reaction where K<sub>c</sub> is   at 25<sup> \circ </sup>C?</strong> A) The reaction mixture contains mostly products at equilibrium. B) The reaction mixture contains mostly reactants at equilibrium. C) The rate of reaction is very fast. D) There are approximately equal moles of reactants and products at equilibrium. E) Both A and C.  at 25 \circ C?

A) The reaction mixture contains mostly products at equilibrium.
B) The reaction mixture contains mostly reactants at equilibrium.
C) The rate of reaction is very fast.
D) There are approximately equal moles of reactants and products at equilibrium.
E) Both A and C.
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26
For the reaction TlSCN(s)  <strong>For the reaction TlSCN(s)   Tl<sup>+</sup>(aq)+ SCN<sup>-</sup>(aq),K<sub>c</sub> =   At 25<sup> \circ </sup>C.Which of the following concerning a 125 mL solution containing   M Tl<sup>+</sup>,   M SCN<sup>-</sup> and a large excess of TlSCN(s)is/are correct? 1)The mixture is at equilibrium. 2)Additional TlSCN(s)must precipitate to attain equilibrium. 3)The reaction quotient (Q)is greater than one.</strong> A) 1 only B) 2 only C) 3 only D) 1 and 3 E) 2 and 3  Tl+(aq)+ SCN-(aq),Kc =  <strong>For the reaction TlSCN(s)   Tl<sup>+</sup>(aq)+ SCN<sup>-</sup>(aq),K<sub>c</sub> =   At 25<sup> \circ </sup>C.Which of the following concerning a 125 mL solution containing   M Tl<sup>+</sup>,   M SCN<sup>-</sup> and a large excess of TlSCN(s)is/are correct? 1)The mixture is at equilibrium. 2)Additional TlSCN(s)must precipitate to attain equilibrium. 3)The reaction quotient (Q)is greater than one.</strong> A) 1 only B) 2 only C) 3 only D) 1 and 3 E) 2 and 3
At 25 \circ C.Which of the following concerning a 125 mL solution containing  <strong>For the reaction TlSCN(s)   Tl<sup>+</sup>(aq)+ SCN<sup>-</sup>(aq),K<sub>c</sub> =   At 25<sup> \circ </sup>C.Which of the following concerning a 125 mL solution containing   M Tl<sup>+</sup>,   M SCN<sup>-</sup> and a large excess of TlSCN(s)is/are correct? 1)The mixture is at equilibrium. 2)Additional TlSCN(s)must precipitate to attain equilibrium. 3)The reaction quotient (Q)is greater than one.</strong> A) 1 only B) 2 only C) 3 only D) 1 and 3 E) 2 and 3
M Tl+,  <strong>For the reaction TlSCN(s)   Tl<sup>+</sup>(aq)+ SCN<sup>-</sup>(aq),K<sub>c</sub> =   At 25<sup> \circ </sup>C.Which of the following concerning a 125 mL solution containing   M Tl<sup>+</sup>,   M SCN<sup>-</sup> and a large excess of TlSCN(s)is/are correct? 1)The mixture is at equilibrium. 2)Additional TlSCN(s)must precipitate to attain equilibrium. 3)The reaction quotient (Q)is greater than one.</strong> A) 1 only B) 2 only C) 3 only D) 1 and 3 E) 2 and 3
M SCN- and a large excess of TlSCN(s)is/are correct?
1)The mixture is at equilibrium.
2)Additional TlSCN(s)must precipitate to attain equilibrium.
3)The reaction quotient (Q)is greater than one.

A) 1 only
B) 2 only
C) 3 only
D) 1 and 3
E) 2 and 3
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27
Which of the following statements about the reaction quotient,Q,is false?

A) The value of Q can be used to predict equilibrium concentrations.
B) It has the same expression as Kc.
C) Its value is calculated using nonequilibrium concentrations.
D) If Q > Kc,the reaction must move to equilibrium by forming more reactants.
E) If Q < Kc,the reaction must move to equilibrium by forming more products.
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28
At a given temperature,0.0664 mol N2O4(g)is placed in a 1.00 L flask.After reaching equilibrium,the concentration of NO2(g)is 6.1 ×\times 10-3 M.What is Kc for the reaction below?
 <strong>At a given temperature,0.0664 mol N<sub>2</sub>O<sub>4</sub>(g)is placed in a 1.00 L flask.After reaching equilibrium,the concentration of NO<sub>2</sub>(g)is 6.1  \times  10<sup>-3</sup> M.What is K<sub>c</sub> for the reaction below?  </strong> A) 3.7  \times  10<sup>-5</sup> B) 1.4  \times  10<sup>-4</sup> C) 5.9  \times  10<sup>-4</sup> D) 9.6  \times  10<sup>-2</sup> E) 1.8  \times  10<sup>3</sup>

A) 3.7 ×\times 10-5
B) 1.4 ×\times 10-4
C) 5.9 ×\times 10-4
D) 9.6 ×\times 10-2
E) 1.8 ×\times 103
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29
Consider the following reaction:
<strong>Consider the following reaction:   Given that 1.00 mol of HF(g),0.389 mol of H<sub>2</sub>(g),and 0.750 mol of F<sub>2</sub>(g)are mixed in a 5.00-L flask,determine the reaction quotient,Q.</strong> A) Q = 0.0729 B) Q = 0.292 C) Q = 0.0584 D) Q = 2.14 E) none of these
Given that 1.00 mol of HF(g),0.389 mol of H2(g),and 0.750 mol of F2(g)are mixed in a 5.00-L flask,determine the reaction quotient,Q.

A) Q = 0.0729
B) Q = 0.292
C) Q = 0.0584
D) Q = 2.14
E) none of these
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30
At 25 \circ C,0.138 mg AgBr dissolves in 10.0 L of water.What is the equilibrium constant for the reaction below?
 <strong>At 25 <sup> \circ </sup>C,0.138 mg AgBr dissolves in 10.0 L of water.What is the equilibrium constant for the reaction below?  </strong> A) 5.40  \times  10<sup>-13</sup> B) 5.40  \times  10<sup>-11</sup> C) 1.90  \times  10<sup>-8</sup> D) 7.35  \times  10<sup>-7</sup> E) 1.90  \times  10<sup>-6</sup>

A) 5.40 ×\times 10-13
B) 5.40 ×\times 10-11
C) 1.90 ×\times 10-8
D) 7.35 ×\times 10-7
E) 1.90 ×\times 10-6
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31
The reaction quotient,Q,for a system is <strong>The reaction quotient,Q,for a system is   .If the equilibrium constant for the system at some temperature is   ,what will happen as the reaction mixture returns to equilibrium?</strong> A) The equilibrium constant will increase until it equals the reaction quotient. B) There will be a net gain in both product(s)and reactant(s). C) There will be a net gain in product(s). D) There will be a net gain in reactant(s). E) The equilibrium constant will decrease until it equals the reaction quotient. .If the equilibrium constant for the system at some temperature is <strong>The reaction quotient,Q,for a system is   .If the equilibrium constant for the system at some temperature is   ,what will happen as the reaction mixture returns to equilibrium?</strong> A) The equilibrium constant will increase until it equals the reaction quotient. B) There will be a net gain in both product(s)and reactant(s). C) There will be a net gain in product(s). D) There will be a net gain in reactant(s). E) The equilibrium constant will decrease until it equals the reaction quotient.
,what will happen as the reaction mixture returns to equilibrium?

A) The equilibrium constant will increase until it equals the reaction quotient.
B) There will be a net gain in both product(s)and reactant(s).
C) There will be a net gain in product(s).
D) There will be a net gain in reactant(s).
E) The equilibrium constant will decrease until it equals the reaction quotient.
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32
An aqueous mixture of phenol and ammonia has initial concentrations of 0.200 M C6H5OH(aq)and 0.120 M NH3(aq).At equilibrium,the C6H5O-(aq)concentration is 0.050 M.Calculate K for the reaction.
C6H5OH(aq)+ NH3(aq) <strong>An aqueous mixture of phenol and ammonia has initial concentrations of 0.200 M C<sub>6</sub>H<sub>5</sub>OH(aq)and 0.120 M NH<sub>3</sub>(aq).At equilibrium,the C<sub>6</sub>H<sub>5</sub>O<sup>-</sup>(aq)concentration is 0.050 M.Calculate K for the reaction. C<sub>6</sub>H<sub>5</sub>OH(aq)+ NH<sub>3</sub>(aq)   C<sub>6</sub>H<sub>5</sub>O<sup>-</sup> + NH<sub>4</sub><sup>+</sup>(aq)</strong> A) 0.10 B) 0.24 C) 2.1 D) 4.2 E) 4.8 C6H5O- + NH4+(aq)

A) 0.10
B) 0.24
C) 2.1
D) 4.2
E) 4.8
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33
Excess Ag2SO4(s)is placed in water at 25 \circ C.At equilibrium,the solution contains 0.029 M Ag+(aq).What is the equilibrium constant for the reaction below?
 <strong>Excess Ag<sub>2</sub>SO<sub>4</sub>(s)is placed in water at 25 <sup> \circ </sup>C.At equilibrium,the solution contains 0.029 M Ag<sup>+</sup>(aq).What is the equilibrium constant for the reaction below?  </strong> A) 1.8  \times  10<sup>-7</sup> B) 6.1  \times  10<sup>-6</sup> C) 1.2  \times  10<sup>-5</sup> D) 2.4  \times  10<sup>-5</sup> E) 8.4  \times  10<sup>-4</sup>

A) 1.8 ×\times 10-7
B) 6.1 ×\times 10-6
C) 1.2 ×\times 10-5
D) 2.4 ×\times 10-5
E) 8.4 ×\times 10-4
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34
A 2.5 L flask is filled with 0.25 mol SO3,0.20 mol SO2,and 0.40 mol O2,and allowed to reach equilibrium.Assume the temperature of the mixture is chosen so that Kc = 0.12.Predict the effect on the concentration of SO3 as equilibrium is achieved by using Q,the reaction quotient.
2 SO3(g) <strong>A 2.5 L flask is filled with 0.25 mol SO<sub>3</sub>,0.20 mol SO<sub>2</sub>,and 0.40 mol O<sub>2</sub>,and allowed to reach equilibrium.Assume the temperature of the mixture is chosen so that K<sub>c</sub> = 0.12.Predict the effect on the concentration of SO<sub>3</sub> as equilibrium is achieved by using Q,the reaction quotient. 2 SO<sub>3</sub>(g)   2 SO<sub>2</sub>(g)+ O<sub>2</sub>(g)</strong> A) [SO<sub>3</sub>] will decrease because Q > K. B) [SO<sub>3</sub>] will decrease because Q < K. C) [SO<sub>3</sub>] will increase because Q < K. D) [SO<sub>3</sub>] will increase because Q > K. E) [SO<sub>3</sub>] will remain the same because Q = K. 2 SO2(g)+ O2(g)

A) [SO3] will decrease because Q > K.
B) [SO3] will decrease because Q < K.
C) [SO3] will increase because Q < K.
D) [SO3] will increase because Q > K.
E) [SO3] will remain the same because Q = K.
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35
A 10.0-g sample of solid NH4Cl is heated in a 5.00-L container to 900.°C.At equilibrium the pressure of NH3(g)is 1.47 atm.
NH4Cl(s) <strong>A 10.0-g sample of solid NH<sub>4</sub>Cl is heated in a 5.00-L container to 900.°C.At equilibrium the pressure of NH<sub>3</sub>(g)is 1.47 atm. NH<sub>4</sub>Cl(s)   NH<sub>3</sub>(g)+ HCl(g) The equilibrium constant,K<sub>p</sub>,for the reaction is:</strong> A) 2.16 B) 7.78 C) 1.47 D) 2.94 E) none of these NH3(g)+ HCl(g)
The equilibrium constant,Kp,for the reaction is:

A) 2.16
B) 7.78
C) 1.47
D) 2.94
E) none of these
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36
If the reaction quotient,Q,is equal to K in a gas phase reaction,then

A) the chemical system has reached equilibrium.
B) the temperature must be increased for the reaction to proceed in the forward direction.
C) the reaction will proceed in the forward direction until equilibrium is established.
D) the reaction will proceed in the backward direction until equilibrium is established.
E) the reaction will proceed in the direction that increases the number of gas phase particles.
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37
When 0.20 mole HF is dissolved in water to a volume of 1.00 L,5.8% of the HF dissociates to form F-(aq).What is the equilibrium constant for the reaction?
 <strong>When 0.20 mole HF is dissolved in water to a volume of 1.00 L,5.8% of the HF dissociates to form F<sup>-</sup>(aq).What is the equilibrium constant for the reaction?  </strong> A) 1.3  \times  10<sup>-4</sup> B) 7.1  \times  10<sup>-4</sup> C) 1.2  \times  10<sup>-2</sup> D) 1.7  \times  10<sup>-2</sup> E) 6.2  \times  10<sup>-2</sup>

A) 1.3 ×\times 10-4
B) 7.1 ×\times 10-4
C) 1.2 ×\times 10-2
D) 1.7 ×\times 10-2
E) 6.2 ×\times 10-2
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38
Consider the following equilibrium:
<strong>Consider the following equilibrium:   Suppose 15.6 g each of CH<sub>4</sub>,C<sub>2</sub>H<sub>6</sub>,C<sub>5</sub>H<sub>12</sub>,and C<sub>6</sub>H<sub>14</sub> are placed in a 45.0-L reaction vessel at 500 K.Which of the following statements is correct?</strong> A) Because Q<sub>c</sub> < K<sub>c</sub>,more products will be formed. B) Because Q<sub>c</sub> = 1,the system is at equilibrium. C) Because Q<sub>c</sub> = 1,more products will be formed. D) Because Q<sub>c</sub> = 1,more reactants will be formed. E) Because Q<sub>c</sub> > K<sub>c</sub>,more reactants will be formed.
Suppose 15.6 g each of CH4,C2H6,C5H12,and C6H14 are placed in a 45.0-L reaction vessel at 500 K.Which of the following statements is correct?

A) Because Qc < Kc,more products will be formed.
B) Because Qc = 1,the system is at equilibrium.
C) Because Qc = 1,more products will be formed.
D) Because Qc = 1,more reactants will be formed.
E) Because Qc > Kc,more reactants will be formed.
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39
What is the reaction quotient,Q,for the equilibrium
<strong>What is the reaction quotient,Q,for the equilibrium  SCN<sup>-</sup>(aq) When 0.4257 L of   M Ag<sup>+</sup> is combined with 0.2376 L of   M SCN<sup>-</sup> in the presence of an excess of AgSCN(s)?</strong> A)   B)   C)   D)   E)   SCN-(aq)
When 0.4257 L of <strong>What is the reaction quotient,Q,for the equilibrium  SCN<sup>-</sup>(aq) When 0.4257 L of   M Ag<sup>+</sup> is combined with 0.2376 L of   M SCN<sup>-</sup> in the presence of an excess of AgSCN(s)?</strong> A)   B)   C)   D)   E)
M Ag+ is combined with 0.2376 L of <strong>What is the reaction quotient,Q,for the equilibrium  SCN<sup>-</sup>(aq) When 0.4257 L of   M Ag<sup>+</sup> is combined with 0.2376 L of   M SCN<sup>-</sup> in the presence of an excess of AgSCN(s)?</strong> A)   B)   C)   D)   E)
M SCN- in the presence of an excess of AgSCN(s)?

A) <strong>What is the reaction quotient,Q,for the equilibrium  SCN<sup>-</sup>(aq) When 0.4257 L of   M Ag<sup>+</sup> is combined with 0.2376 L of   M SCN<sup>-</sup> in the presence of an excess of AgSCN(s)?</strong> A)   B)   C)   D)   E)
B) <strong>What is the reaction quotient,Q,for the equilibrium  SCN<sup>-</sup>(aq) When 0.4257 L of   M Ag<sup>+</sup> is combined with 0.2376 L of   M SCN<sup>-</sup> in the presence of an excess of AgSCN(s)?</strong> A)   B)   C)   D)   E)
C) <strong>What is the reaction quotient,Q,for the equilibrium  SCN<sup>-</sup>(aq) When 0.4257 L of   M Ag<sup>+</sup> is combined with 0.2376 L of   M SCN<sup>-</sup> in the presence of an excess of AgSCN(s)?</strong> A)   B)   C)   D)   E)
D) <strong>What is the reaction quotient,Q,for the equilibrium  SCN<sup>-</sup>(aq) When 0.4257 L of   M Ag<sup>+</sup> is combined with 0.2376 L of   M SCN<sup>-</sup> in the presence of an excess of AgSCN(s)?</strong> A)   B)   C)   D)   E)
E) <strong>What is the reaction quotient,Q,for the equilibrium  SCN<sup>-</sup>(aq) When 0.4257 L of   M Ag<sup>+</sup> is combined with 0.2376 L of   M SCN<sup>-</sup> in the presence of an excess of AgSCN(s)?</strong> A)   B)   C)   D)   E)
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40
Nitrogen trifluoride decomposes at to form nitrogen and fluorine gases according to the following equation:
 <strong>Nitrogen trifluoride decomposes at to form nitrogen and fluorine gases according to the following equation:   6.00-L reaction vessel is initially charged with 1.96 mol of NF<sub>3</sub> and allowed to come to equilibrium at 800 K.Once equilibrium is established,the reaction vessel is found to contain 0.0380 mol of N<sub>2</sub>.What is the value of K<sub>p</sub> at this temperature? (R = 0.0821 L.atm.mol.K)</strong> A) 1.53  \times  10<sup>-5</sup> B) 1.91  \times  10<sup>-3</sup> C) 1.76  \times  10<sup>-3</sup> D) 1.59  \times  10<sup>-5</sup> E) 4.43  \times  10<sup>-7</sup>
6.00-L reaction vessel is initially charged with 1.96 mol of NF3 and allowed to come to equilibrium at 800 K.Once equilibrium is established,the reaction vessel is found to contain 0.0380 mol of N2.What is the value of Kp at this temperature? (R = 0.0821 L.atm.mol.K)

A) 1.53 ×\times 10-5
B) 1.91 ×\times 10-3
C) 1.76 ×\times 10-3
D) 1.59 ×\times 10-5
E) 4.43 ×\times 10-7
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41
The equilibrium constant at 25 \circ C for the dissolution of silver iodide is
8.5 ×\times 10-17.AgI(s)  <strong>The equilibrium constant at 25 <sup> \circ </sup>C for the dissolution of silver iodide is 8.5  \times  10<sup>-17</sup>.AgI(s)   Ag<sup>+</sup>(aq)+ I<sup>-</sup>(aq) If an excess quantity of AgI(s)is added to water and allowed to equilibrate,what is the equilibrium concentration of I<sup>-</sup>?</strong> A) 7.2  \times  10<sup>-33</sup> M B) 4.3  \times  10<sup>-17</sup> M C) 8.5  \times  10<sup>-17</sup> M D) 6.5  \times  10<sup>-9</sup> M E) 9.2  \times  10<sup>-9</sup> M  Ag+(aq)+ I-(aq)
If an excess quantity of AgI(s)is added to water and allowed to equilibrate,what is the equilibrium concentration of I-?

A) 7.2 ×\times 10-33 M
B) 4.3 ×\times 10-17 M
C) 8.5 ×\times 10-17 M
D) 6.5 ×\times 10-9 M
E) 9.2 ×\times 10-9 M
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42
The following reaction occurred when a 1.0-liter reaction vessel was initially charged with 2.0 moles of N2(g)and 4.0 moles of H2(g):
 <strong>The following reaction occurred when a 1.0-liter reaction vessel was initially charged with 2.0 moles of N<sub>2</sub>(g)and 4.0 moles of H<sub>2</sub>(g):   Once equilibrium was established,the concentration of NH<sub>3</sub>(g)was determined to be 0.59 M at 700.°C.The value for K<sub>c</sub> at 700.°C for the formation of ammonia is:</strong> A) 3.5  \times  10<sup>-1</sup> B) 6.8  \times  10<sup>-3</sup> C) 1.1  \times  10<sup>-1</sup> D) 6.6  \times  10<sup>-2</sup> E) none of these
Once equilibrium was established,the concentration of NH3(g)was determined to be 0.59 M at 700.°C.The value for Kc at 700.°C for the formation of ammonia is:

A) 3.5 ×\times 10-1
B) 6.8 ×\times 10-3
C) 1.1 ×\times 10-1
D) 6.6 ×\times 10-2
E) none of these
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43
Consider the following equilibrium:
CO2(g)+ H2(g) <strong>Consider the following equilibrium: CO<sub>2</sub>(g)+ H<sub>2</sub>(g)  CO(g)+ H<sub>2</sub>O(g); K<sub>c</sub> = 1.6 at 1260 K Suppose 0.038 mol CO<sub>2</sub> and 0.022 mol H<sub>2 </sub>are placed in a 1.50-L vessel at 1260 K.What is the equilibrium partial pressure of CO(g)? (R = 0.0821 L · atm/K·mol)</strong> A) 9.9 atm B) 1.1 atm C) 4.1 atm D) 2.6 atm E) 1.5 atm CO(g)+ H2O(g); Kc = 1.6 at 1260 K
Suppose 0.038 mol CO2 and 0.022 mol H2 are placed in a 1.50-L vessel at 1260 K.What is the equilibrium partial pressure of CO(g)? (R = 0.0821 L · atm/K·mol)

A) 9.9 atm
B) 1.1 atm
C) 4.1 atm
D) 2.6 atm
E) 1.5 atm
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44
The equilibrium constant,Kc,for the decomposition of ammonium hydrogen sulfide is 1.8 ×\times 10-4 at 25 \circ C.NH4HS(s)  <strong>The equilibrium constant,K<sub>c</sub>,for the decomposition of ammonium hydrogen sulfide is 1.8  \times  10<sup>-4</sup> at 25 <sup> \circ </sup>C.NH<sub>4</sub>HS(s)   NH<sub>3</sub>(g)+ H<sub>2</sub>S(g) If excess NH<sub>4</sub>HS(s)is allowed to equilibrate at 25 <sup> \circ </sup>C,what is the equilibrium concentration of NH<sub>3</sub>?</strong> A) 3.2  \times  10<sup>-8</sup> M B) 9.0  \times  10<sup>-5</sup> M C) 1.8  \times  10<sup>-4</sup> M D) 6.7  \times  10<sup>-3</sup> M E) 1.3  \times  10<sup>-2</sup> M  NH3(g)+ H2S(g)
If excess NH4HS(s)is allowed to equilibrate at 25 \circ C,what is the equilibrium concentration of NH3?

A) 3.2 ×\times 10-8 M
B) 9.0 ×\times 10-5 M
C) 1.8 ×\times 10-4 M
D) 6.7 ×\times 10-3 M
E) 1.3 ×\times 10-2 M
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45
Nitrogen and oxygen gases may react to form nitrogen monoxide.
At 1500 \circ C,Kc equals 1.0 ×\times 10-5.N2(g)+ O2(g)  <strong>Nitrogen and oxygen gases may react to form nitrogen monoxide. At 1500 <sup> \circ </sup>C,K<sub>c</sub> equals 1.0  \times 10<sup>-</sup><sup>5</sup>.N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g) If 0.030 mol N<sub>2</sub> and 0.030 mol O<sub>2</sub> are sealed in a 1.0 L flask at 1500 <sup> \circ </sup>C,what is the concentration of NO(g)when equilibrium is established?</strong> A) 3.0  \times  10<sup>-7</sup> M B) 4.7  \times  10<sup>-5</sup> M C) 9.5  \times  10<sup>-5</sup> M D) 3.0  \times  10<sup>-2</sup> M E) 9.1  \times 10<sup>1</sup> M  2 NO(g)
If 0.030 mol N2 and 0.030 mol O2 are sealed in a 1.0 L flask at 1500 \circ C,what is the concentration of NO(g)when equilibrium is established?

A) 3.0 ×\times 10-7 M
B) 4.7 ×\times 10-5 M
C) 9.5 ×\times 10-5 M
D) 3.0 ×\times 10-2 M
E) 9.1 ×\times 101 M
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46
For the equilibrium PCl5(g) <strong>For the equilibrium PCl<sub>5</sub>(g)   PCl<sub>3</sub>(g)+ Cl<sub>2</sub>(g),K<sub>c</sub> = 4.0 at 228°C.If pure PCl<sub>5</sub> is placed in a 1.00-L container and allowed to come to equilibrium,and the equilibrium concentration of PCl<sub>5</sub>(g)is 0.26 M,what is the equilibrium concentration of PCl<sub>3</sub>?</strong> A) 0.13 M B) 0.37 M C) 0.26 M D) 1.0 M E) 0.017 M PCl3(g)+ Cl2(g),Kc = 4.0 at 228°C.If pure PCl5 is placed in a 1.00-L container and allowed to come to equilibrium,and the equilibrium concentration of PCl5(g)is 0.26 M,what is the equilibrium concentration of PCl3?

A) 0.13 M
B) 0.37 M
C) 0.26 M
D) 1.0 M
E) 0.017 M
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47
Consider the reaction H2 + I2  <strong>Consider the reaction H<sub>2</sub> + I<sub>2</sub>   2HI for which K<sub>c</sub> = 43.6 at a high temperature.If an equimolar mixture of reactants gives the concentration of the product to be 0.50 M at equilibrium,determine the equilibrium concentration of the hydrogen.</strong> A) 7.6  \times  10<sup>-2 </sup>M B) 1.1  \times  10<sup>-1</sup> M C) 3.8  \times  10<sup>-2 </sup>M D) 1.3  \times  10<sup>1 </sup>M E) 5.7  \times  10<sup>-3 </sup>M  2HI for which Kc = 43.6 at a high temperature.If an equimolar mixture of reactants gives the concentration of the product to be 0.50 M at equilibrium,determine the equilibrium concentration of the hydrogen.

A) 7.6 ×\times 10-2 M
B) 1.1 ×\times 10-1 M
C) 3.8 ×\times 10-2 M
D) 1.3 ×\times 101 M
E) 5.7 ×\times 10-3 M
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48
A 2.50-mol sample of HI is placed in a 1.00-L vessel at 460°C,and the reaction system is allowed to come to equilibrium.The HI partially decomposes,forming 0.191 mol H2 and 0.191 mol I2 at equilibrium.What is the equilibrium constant Kc for the following reaction at 460°C?
½ H2(g)+ ½ I2(g)  <strong>A 2.50-mol sample of HI is placed in a 1.00-L vessel at 460°C,and the reaction system is allowed to come to equilibrium.The HI partially decomposes,forming 0.191 mol H<sub>2</sub> and 0.191 mol I<sub>2</sub> at equilibrium.What is the equilibrium constant K<sub>c</sub> for the following reaction at 460°C? ½ H<sub>2</sub>(g)+ ½ I<sub>2</sub>(g)   HI(g)</strong> A) 1.23  \times  10<sup>2</sup> B) 8.10  \times  10<sup>-3</sup> C) 1.72  \times  10<sup>-2</sup> D) 11.1 E) 7.63  HI(g)

A) 1.23 ×\times 102
B) 8.10 ×\times 10-3
C) 1.72 ×\times 10-2
D) 11.1
E) 7.63
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49
Nitrosyl bromide decomposes according to the chemical equation below.2 NOBr(g)  <strong>Nitrosyl bromide decomposes according to the chemical equation below.2 NOBr(g)   2 NO(g)+ Br<sub>2</sub>(g) When 0.260 atm of NOBr is sealed in a flask and allowed to reach equilibrium,22% of the NOBr decomposes.What is the equilibrium constant,K<sub>p</sub>,for the reaction?</strong> A) 2.3  \times  10<sup>-3</sup> B) 4.5  \times  10<sup>-3</sup> C) 3.5  \times  10<sup>-2</sup> D) 4.8  \times  10<sup>-2</sup> E) 8.0  \times  10<sup>-2</sup>  2 NO(g)+ Br2(g)
When 0.260 atm of NOBr is sealed in a flask and allowed to reach equilibrium,22% of the NOBr decomposes.What is the equilibrium constant,Kp,for the reaction?

A) 2.3 ×\times 10-3
B) 4.5 ×\times 10-3
C) 3.5 ×\times 10-2
D) 4.8 ×\times 10-2
E) 8.0 ×\times 10-2
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50
For the reaction given below,2.00 moles of A and 3.00 moles of B are placed in a 6.00-L container.
A(g)+ 2B(g) <strong>For the reaction given below,2.00 moles of A and 3.00 moles of B are placed in a 6.00-L container. A(g)+ 2B(g)   C(g) At equilibrium,the concentration of A is 0.223 mol/L.What is the value of K<sub>c</sub>?</strong> A) 1.41 B) 1.77 C) 6.34 D) 0.223 E) 0.495 C(g)
At equilibrium,the concentration of A is 0.223 mol/L.What is the value of Kc?

A) 1.41
B) 1.77
C) 6.34
D) 0.223
E) 0.495
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51
Sulfuryl chloride decomposes to sulfur dioxide and chlorine.
SO2Cl2(g) <strong>Sulfuryl chloride decomposes to sulfur dioxide and chlorine. SO<sub>2</sub>Cl<sub>2</sub>(g)   SO<sub>2</sub>(g)+ Cl<sub>2</sub>(g) K<sub>c</sub> is 0.045 at 648 K.If an initial concentration of 0.075 M SO<sub>2</sub>Cl<sub>2</sub> is allowed to equilibrate,what is the equilibrium concentration of Cl<sub>2</sub>?</strong> A) 0.0034 M B) 0.030 M C) 0.040 M D) 0.058 M E) 0.075 M SO2(g)+ Cl2(g)
Kc is 0.045 at 648 K.If an initial concentration of 0.075 M SO2Cl2 is allowed to equilibrate,what is the equilibrium concentration of Cl2?

A) 0.0034 M
B) 0.030 M
C) 0.040 M
D) 0.058 M
E) 0.075 M
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52
In an experiment,0.42 mol H2 and 0.42 mol I2 are mixed in a 1.00-L container,and the reaction forms HI.If Kc = 49.for this reaction,what is the equilibrium concentration of HI?
I2(g)+ H2(g) <strong>In an experiment,0.42 mol H<sub>2</sub> and 0.42 mol I<sub>2</sub> are mixed in a 1.00-L container,and the reaction forms HI.If K<sub>c</sub> = 49.for this reaction,what is the equilibrium concentration of HI? I<sub>2</sub>(g)+ H<sub>2</sub>(g)    2HI(g)</strong> A) 0.81 M B) 0.74 M C) 0.65 M D) 0.105 M E) 0.056 M 2HI(g)

A) 0.81 M
B) 0.74 M
C) 0.65 M
D) 0.105 M
E) 0.056 M
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53
A sample of solid NH4NO3 was placed in an evacuated container and then heated so that it decomposed explosively according to the following equation:
<strong>A sample of solid NH<sub>4</sub>NO<sub>3</sub> was placed in an evacuated container and then heated so that it decomposed explosively according to the following equation:   At equilibrium the total pressure in the container was found to be 2.81 atm at a temperature of 500.°C.Calculate K<sub>p</sub>.</strong> A) 1.75 B) 0.877 C) 3.29 D) 88.8 E) 0.822
At equilibrium the total pressure in the container was found to be 2.81 atm at a temperature of 500.°C.Calculate Kp.

A) 1.75
B) 0.877
C) 3.29
D) 88.8
E) 0.822
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54
At 25 \circ C,the decomposition of dinitrogen tetraoxide
N2O4(g)  <strong>At 25 <sup> \circ </sup>C,the decomposition of dinitrogen tetraoxide N<sub>2</sub>O<sub>4</sub>(g)   2 NO<sub>2</sub>(g) Has an equilibrium constant (K<sub>p</sub>)of 0.144.At equilibrium,the total pressure of the system is 0.0758 atm.What is the partial pressure of each gas?</strong> A) 0.0745 atm NO<sub>2</sub>(g)and 0.0385 N<sub>2</sub>O<sub>4</sub>(g) B) 0.0549 atm NO<sub>2</sub>(g)and 0.0209 N<sub>2</sub>O<sub>4</sub>(g) C) 0.0531 atm NO<sub>2</sub>(g)and 0.0227 N<sub>2</sub>O<sub>4</sub>(g) D) 0.0502 atm NO<sub>2</sub>(g)and 0.0256 N<sub>2</sub>O<sub>4</sub>(g) E) 0.0381 atm NO<sub>2</sub>(g)and 0.0377 N<sub>2</sub>O<sub>4</sub>(g)  2 NO2(g)
Has an equilibrium constant (Kp)of 0.144.At equilibrium,the total pressure of the system is 0.0758 atm.What is the partial pressure of each gas?

A) 0.0745 atm NO2(g)and 0.0385 N2O4(g)
B) 0.0549 atm NO2(g)and 0.0209 N2O4(g)
C) 0.0531 atm NO2(g)and 0.0227 N2O4(g)
D) 0.0502 atm NO2(g)and 0.0256 N2O4(g)
E) 0.0381 atm NO2(g)and 0.0377 N2O4(g)
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55
A mixture of nitrogen and hydrogen was allowed to come to equilibrium at a given temperature.
3H2 + N2 <strong>A mixture of nitrogen and hydrogen was allowed to come to equilibrium at a given temperature. 3H<sub>2</sub> + N<sub>2</sub>   2NH<sub>3</sub> An analysis of the mixture at equilibrium revealed 2.1 mol N<sub>2</sub>,3.2 mol H<sub>2</sub>,and 1.8 mol NH<sub>3</sub>.How many moles of H<sub>2</sub> were present at the beginning of the reaction?</strong> A) 3.2 B) 4.8 C) 5.0 D) 5.9 E) 4.4 2NH3
An analysis of the mixture at equilibrium revealed 2.1 mol N2,3.2 mol H2,and 1.8 mol NH3.How many moles of H2 were present at the beginning of the reaction?

A) 3.2
B) 4.8
C) 5.0
D) 5.9
E) 4.4
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56
For the equilibrium N2O4(g)  <strong>For the equilibrium N<sub>2</sub>O<sub>4</sub>(g)   2NO<sub>2</sub>(g),at 298 K,K<sub>p</sub> = 0.15.For this reaction system,it is found that the partial pressure of N<sub>2</sub>O<sub>4</sub> is 3.6  \times  10<sup>-2</sup> atm at equilibrium.What is the partial pressure of NO<sub>2</sub> at equilibrium?</strong> A) 4.9 atm B) 24 atm C) 0.0017 atm D) 0.0054 atm E) 0.073 atm  2NO2(g),at 298 K,Kp = 0.15.For this reaction system,it is found that the partial pressure of N2O4 is 3.6 ×\times 10-2 atm at equilibrium.What is the partial pressure of NO2 at equilibrium?

A) 4.9 atm
B) 24 atm
C) 0.0017 atm
D) 0.0054 atm
E) 0.073 atm
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57
At 800 K,the equilibrium constant,Kp,for the following reaction is
3.2 ×\times 10-7.2 H2S(g)  <strong>At 800 K,the equilibrium constant,K<sub>p</sub>,for the following reaction is 3.2  \times  10<sup>-7</sup>.2 H<sub>2</sub>S(g)   2 H<sub>2</sub>(g)+ S<sub>2</sub>(g) A reaction vessel at 800 K initially contains 3.00 atm of H<sub>2</sub>S.If the reaction is allowed to equilibrate,what is the equilibrium pressure of S<sub>2</sub>?</strong> A) 8.5  \times  10<sup>-5</sup> atm B) 6.2  \times  10<sup>-3</sup> atm C) 9.0  \times  10<sup>-3</sup> atm D) 1.1  \times  10<sup>-2</sup> atm E) 1.4  \times  10<sup>-2</sup> atm  2 H2(g)+ S2(g)
A reaction vessel at 800 K initially contains 3.00 atm of H2S.If the reaction is allowed to equilibrate,what is the equilibrium pressure of S2?

A) 8.5 ×\times 10-5 atm
B) 6.2 ×\times 10-3 atm
C) 9.0 ×\times 10-3 atm
D) 1.1 ×\times 10-2 atm
E) 1.4 ×\times 10-2 atm
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58
At 700 K,Kp for the following equilibrium is
5.6 ×\times 10-3.2HgO(s)  <strong>At 700 K,K<sub>p</sub> for the following equilibrium is 5.6  \times  10<sup>-3</sup>.2HgO(s)   2Hg(l)+ O<sub>2</sub>(g) Suppose 51.2 g of mercury(II)oxide is placed in a sealed 3.00-L vessel at 700 K.What is the partial pressure of oxygen gas at equilibrium? (R = 0.0821 L · atm/(K · mol))</strong> A) 0.075 atm B) 0.0056 atm C) 4.5 atm D) 19 atm E) 2.3 atm  2Hg(l)+ O2(g)
Suppose 51.2 g of mercury(II)oxide is placed in a sealed 3.00-L vessel at 700 K.What is the partial pressure of oxygen gas at equilibrium? (R = 0.0821 L · atm/(K · mol))

A) 0.075 atm
B) 0.0056 atm
C) 4.5 atm
D) 19 atm
E) 2.3 atm
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59
For the equilibrium PCl5(g)  <strong>For the equilibrium PCl<sub>5</sub>(g)   PCl<sub>3</sub>(g)+ Cl<sub>2</sub>(g),K<sub>c</sub> = 2.0  \times  10<sup>1</sup> at 240°C.If pure PCl<sub>5</sub> is placed in a 1.00-L container and allowed to come to equilibrium,and the equilibrium concentration of PCl<sub>3</sub>(g)is 0.23 M,what is the equilibrium concentration of PCl<sub>5</sub>(g)?</strong> A) 0.46 M B) 0.12 M C) 0.012 M D) 0.0026 M E) 9.3 M  PCl3(g)+ Cl2(g),Kc = 2.0 ×\times 101 at 240°C.If pure PCl5 is placed in a 1.00-L container and allowed to come to equilibrium,and the equilibrium concentration of PCl3(g)is 0.23 M,what is the equilibrium concentration of PCl5(g)?

A) 0.46 M
B) 0.12 M
C) 0.012 M
D) 0.0026 M
E) 9.3 M
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60
A 3.00-liter flask initially contains 3.00 mol of gas A and 1.50 mol of gas B.Gas A decomposes according to the following reaction:
 <strong>A 3.00-liter flask initially contains 3.00 mol of gas A and 1.50 mol of gas B.Gas A decomposes according to the following reaction:   The equilibrium concentration of gas C is 0.146 mol/L.Determine the value of the equilibrium constant,K<sub>c</sub>.</strong> A) 0.206 B) 0.163 C) 3.84  \times  10<sup>-3</sup> D) 0.516 E) none of these
The equilibrium concentration of gas C is 0.146 mol/L.Determine the value of the equilibrium constant,Kc.

A) 0.206
B) 0.163
C) 3.84 ×\times 10-3
D) 0.516
E) none of these
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61
Consider the following equilibrium at 25°C:
2ICl(g)  <strong>Consider the following equilibrium at 25°C: 2ICl(g)   I<sub>2</sub>(g)+ Cl<sub>2</sub>(g);  \Delta H = 27 kJ; K<sub>p</sub> = 6.2  \times  10<sup>-6</sup> Which of the following would be true if the temperature were increased to 100°C? 1)The value of K<sub>p</sub> would increase. 2)The concentration of ICl(g)would increase. 3)The partial pressure of I<sub>2</sub> would increase.</strong> A) 1 only B) 2 only C) 3 only D) 1 and 2 E) 1 and 3  I2(g)+ Cl2(g); Δ\Delta H = 27 kJ; Kp = 6.2 ×\times 10-6
Which of the following would be true if the temperature were increased to 100°C?
1)The value of Kp would increase.
2)The concentration of ICl(g)would increase.
3)The partial pressure of I2 would increase.

A) 1 only
B) 2 only
C) 3 only
D) 1 and 2
E) 1 and 3
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62
At a given temperature,K = 0.021 for the equilibrium:
PCl5(g) <strong>At a given temperature,K = 0.021 for the equilibrium: PCl<sub>5</sub>(g)   PCl<sub>3</sub>(g)+ Cl<sub>2</sub>(g) What is K for: Cl<sub>2</sub>(g)+ PCl<sub>3</sub>(g)   PCl<sub>5</sub>(g)?</strong> A) 2300 B) 21 C) 0.00044 D) 48 E) 0.021 PCl3(g)+ Cl2(g)
What is K for: Cl2(g)+ PCl3(g) <strong>At a given temperature,K = 0.021 for the equilibrium: PCl<sub>5</sub>(g)   PCl<sub>3</sub>(g)+ Cl<sub>2</sub>(g) What is K for: Cl<sub>2</sub>(g)+ PCl<sub>3</sub>(g)   PCl<sub>5</sub>(g)?</strong> A) 2300 B) 21 C) 0.00044 D) 48 E) 0.021 PCl5(g)?

A) 2300
B) 21
C) 0.00044
D) 48
E) 0.021
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63
Given the equilibrium constants for the equilibria,
2NH4+(aq)+ 2H2O(l)  <strong>Given the equilibrium constants for the equilibria, 2NH<sub>4</sub><sup>+</sup>(aq)+ 2H<sub>2</sub>O(l)   2NH<sub>3</sub>(aq)+ 2H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   CH<sub>3</sub>COOH(aq)+ H<sub>2</sub>O(l)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   Determine K<sub>c</sub> for the following equilibrium. CH<sub>3</sub>COOH(aq)+ NH<sub>3</sub>(aq)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ NH<sub>4</sub><sup>+</sup>(aq)</strong> A) 3.08  \times  10<sup>4</sup> B) 3.25  \times  10<sup>-5</sup> C) 9.96  \times  10<sup>-15</sup> D) 1.00  \times  10<sup>14</sup> E) 1.75  \times  10<sup>-5</sup>  2NH3(aq)+ 2H3O+(aq); Kc =  <strong>Given the equilibrium constants for the equilibria, 2NH<sub>4</sub><sup>+</sup>(aq)+ 2H<sub>2</sub>O(l)   2NH<sub>3</sub>(aq)+ 2H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   CH<sub>3</sub>COOH(aq)+ H<sub>2</sub>O(l)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   Determine K<sub>c</sub> for the following equilibrium. CH<sub>3</sub>COOH(aq)+ NH<sub>3</sub>(aq)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ NH<sub>4</sub><sup>+</sup>(aq)</strong> A) 3.08  \times  10<sup>4</sup> B) 3.25  \times  10<sup>-5</sup> C) 9.96  \times  10<sup>-15</sup> D) 1.00  \times  10<sup>14</sup> E) 1.75  \times  10<sup>-5</sup>
CH3COOH(aq)+ H2O(l)  <strong>Given the equilibrium constants for the equilibria, 2NH<sub>4</sub><sup>+</sup>(aq)+ 2H<sub>2</sub>O(l)   2NH<sub>3</sub>(aq)+ 2H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   CH<sub>3</sub>COOH(aq)+ H<sub>2</sub>O(l)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   Determine K<sub>c</sub> for the following equilibrium. CH<sub>3</sub>COOH(aq)+ NH<sub>3</sub>(aq)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ NH<sub>4</sub><sup>+</sup>(aq)</strong> A) 3.08  \times  10<sup>4</sup> B) 3.25  \times  10<sup>-5</sup> C) 9.96  \times  10<sup>-15</sup> D) 1.00  \times  10<sup>14</sup> E) 1.75  \times  10<sup>-5</sup>  CH3COO-(aq)+ H3O+(aq); Kc =  <strong>Given the equilibrium constants for the equilibria, 2NH<sub>4</sub><sup>+</sup>(aq)+ 2H<sub>2</sub>O(l)   2NH<sub>3</sub>(aq)+ 2H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   CH<sub>3</sub>COOH(aq)+ H<sub>2</sub>O(l)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   Determine K<sub>c</sub> for the following equilibrium. CH<sub>3</sub>COOH(aq)+ NH<sub>3</sub>(aq)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ NH<sub>4</sub><sup>+</sup>(aq)</strong> A) 3.08  \times  10<sup>4</sup> B) 3.25  \times  10<sup>-5</sup> C) 9.96  \times  10<sup>-15</sup> D) 1.00  \times  10<sup>14</sup> E) 1.75  \times  10<sup>-5</sup>
Determine Kc for the following equilibrium.
CH3COOH(aq)+ NH3(aq)  <strong>Given the equilibrium constants for the equilibria, 2NH<sub>4</sub><sup>+</sup>(aq)+ 2H<sub>2</sub>O(l)   2NH<sub>3</sub>(aq)+ 2H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   CH<sub>3</sub>COOH(aq)+ H<sub>2</sub>O(l)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ H<sub>3</sub>O<sup>+</sup>(aq); K<sub>c</sub> =   Determine K<sub>c</sub> for the following equilibrium. CH<sub>3</sub>COOH(aq)+ NH<sub>3</sub>(aq)   CH<sub>3</sub>COO<sup>-</sup>(aq)+ NH<sub>4</sub><sup>+</sup>(aq)</strong> A) 3.08  \times  10<sup>4</sup> B) 3.25  \times  10<sup>-5</sup> C) 9.96  \times  10<sup>-15</sup> D) 1.00  \times  10<sup>14</sup> E) 1.75  \times  10<sup>-5</sup>  CH3COO-(aq)+ NH4+(aq)

A) 3.08 ×\times 104
B) 3.25 ×\times 10-5
C) 9.96 ×\times 10-15
D) 1.00 ×\times 1014
E) 1.75 ×\times 10-5
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64
Assume that the following  endothermic \underline{\text{ endothermic }} chemical reaction is at equilibrium.
C(s)+ H2O(g)  <strong>Assume that the following  \underline{\text{ endothermic  }} chemical reaction is at equilibrium. C(s)+ H<sub>2</sub>O(g)   H<sub>2</sub>(g)+ CO(g) Which of the following statements is/are CORRECT? 1)Increasing the concentration of H<sub>2</sub>(g)will cause the reaction to proceed in the backward direction,increasing the equilibrium concentration of H<sub>2</sub>O(g). 2)Decreasing the temperature will cause the reaction to proceed in the forward direction,increasing the equilibrium concentration of CO(g). 3)Increasing the amount of C(s)will cause the reaction to proceed in the forward direction,increasing the equilibrium concentration of CO(g).</strong> A) 1 only B) 2 only C) 3 only D) 1 and 2 E) 1,2,and 3  H2(g)+ CO(g)
Which of the following statements is/are CORRECT?
1)Increasing the concentration of H2(g)will cause the reaction to proceed in the backward direction,increasing the equilibrium concentration of H2O(g).
2)Decreasing the temperature will cause the reaction to proceed in the forward direction,increasing the equilibrium concentration of CO(g).
3)Increasing the amount of C(s)will cause the reaction to proceed in the forward direction,increasing the equilibrium concentration of CO(g).

A) 1 only
B) 2 only
C) 3 only
D) 1 and 2
E) 1,2,and 3
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65
For the reaction N2O4(g)  <strong>For the reaction N<sub>2</sub>O<sub>4</sub>(g)   2NO<sub>2</sub>(g),K<sub>p</sub> = 0.148 at a temperature of 298 K.What is K<sub>p</sub> for the following reaction? 14NO<sub>2</sub>(g)   7N<sub>2</sub>O<sub>4</sub>(g)</strong> A) 6.43  \times  10<sup>5</sup> B) 1.04 C) 1.56  \times  10<sup>-6</sup> D) 0.965 E) 6.76  2NO2(g),Kp = 0.148 at a temperature of 298 K.What is Kp for the following reaction?
14NO2(g)  <strong>For the reaction N<sub>2</sub>O<sub>4</sub>(g)   2NO<sub>2</sub>(g),K<sub>p</sub> = 0.148 at a temperature of 298 K.What is K<sub>p</sub> for the following reaction? 14NO<sub>2</sub>(g)   7N<sub>2</sub>O<sub>4</sub>(g)</strong> A) 6.43  \times  10<sup>5</sup> B) 1.04 C) 1.56  \times  10<sup>-6</sup> D) 0.965 E) 6.76  7N2O4(g)

A) 6.43 ×\times 105
B) 1.04
C) 1.56 ×\times 10-6
D) 0.965
E) 6.76
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66
If Kc = 0.152 for A2 + 2B <strong>If K<sub>c</sub> = 0.152 for A<sub>2</sub> + 2B   2AB,what is the value of K<sub>c</sub> for the reaction 4AB   2A<sub>2</sub> + 4B?</strong> A) 0.152 B) 0.304 C) 43.3 D) -0.152 E) 3.29 2AB,what is the value of Kc for the reaction
4AB <strong>If K<sub>c</sub> = 0.152 for A<sub>2</sub> + 2B   2AB,what is the value of K<sub>c</sub> for the reaction 4AB   2A<sub>2</sub> + 4B?</strong> A) 0.152 B) 0.304 C) 43.3 D) -0.152 E) 3.29 2A2 + 4B?

A) 0.152
B) 0.304
C) 43.3
D) -0.152
E) 3.29
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67
The symbol Q is called the ________.
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68
The thermochemical equation for the formation of ammonia from elemental nitrogen and hydrogen is as follows.
N2(g)+ 3 H2(g)  <strong>The thermochemical equation for the formation of ammonia from elemental nitrogen and hydrogen is as follows. N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)   2  NH<sub>3</sub>(g) ~~~~~~~~   ~~~~~~~~   \Delta H = -92.2 kJ Given a system that is initially at equilibrium,which of the following actions cause the reaction to proceed to the left?</strong> A) adding N<sub>2</sub>(g) B) removing NH<sub>3</sub>(g) C) adding a catalyst D) decreasing the temperature E) removing H<sub>2</sub>(g)  2 NH3(g)         ~~~~~~~~         ~~~~~~~~ Δ\Delta H = -92.2 kJ
Given a system that is initially at equilibrium,which of the following actions cause the reaction to proceed to the left?

A) adding N2(g)
B) removing NH3(g)
C) adding a catalyst
D) decreasing the temperature
E) removing H2(g)
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69
Given the following chemical equilibria,
N2(g)+ O2(g)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)    2 NO(g)         ~~~~~~~~         ~~~~~~~~ K1
N2(g)+ 3 H2(g)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)    2 NH3(g)         ~~~~~~~~      ~~ ~~~ K2
H2(g)+ 1/2 O2(g)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)    H2O(g)         ~~~~~~~~      ~~~~ ~ K3
Determine the method used to calculate the equilibrium constant for the reaction below.
4 NH3(g)+ 5 O2(g)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)    4 NO(g)+ 6 H2O(g)         ~~~~~~~~ K c

A)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)
B)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)
C)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)
D)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)
E)  <strong>Given the following chemical equilibria, N<sub>2</sub>(g)+ O<sub>2</sub>(g)   2 NO(g)  ~~~~~~~~   ~~~~~~~~  K<sub>1</sub> N<sub>2</sub>(g)+ 3 H<sub>2</sub>(g)    2 NH<sub>3</sub>(g) ~~~~~~~~   ~~  ~~~  K<sub>2</sub> H<sub>2</sub>(g)+ 1/2 O<sub>2</sub>(g)   H<sub>2</sub>O(g) ~~~~~~~~   ~~~~  ~  K<sub>3</sub> Determine the method used to calculate the equilibrium constant for the reaction below. 4 NH<sub>3</sub>(g)+ 5 O<sub>2</sub>(g)   4 NO(g)+ 6 H<sub>2</sub>O(g) ~~~~~~~~  K<sub> c</sub></strong> A)   B)   C)   D)   E)
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70
A flask contains the following chemical system at equilibrium.
CuCO3(s) <strong>A flask contains the following chemical system at equilibrium. CuCO<sub>3</sub>(s)   Cu<sup>2+</sup>(aq)+ 2 CO<sub>3</sub><sup>2-</sup>(aq) Addition of which of the following substances will increase the solubility of CuCO<sub>3</sub>(s)in water? 1)aqueous hydrochloric acid 2)aqueous sodium carbonate 3)solid copper(II)carbonate</strong> A) 1 only B) 2 only C) 3 only D) 1 and 3 E) 1,2,and 3 Cu2+(aq)+ 2 CO32-(aq)
Addition of which of the following substances will increase the solubility of CuCO3(s)in water?
1)aqueous hydrochloric acid
2)aqueous sodium carbonate
3)solid copper(II)carbonate

A) 1 only
B) 2 only
C) 3 only
D) 1 and 3
E) 1,2,and 3
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71
Which of the following equilibria would not be affected by pressure changes at constant temperature?

A) CO2(g)+ H2(g) <strong>Which of the following equilibria would not be affected by pressure changes at constant temperature?</strong> A) CO<sub>2</sub>(g)+ H<sub>2</sub>(g)   CO(g)+  H<sub>2</sub>O(g) B) CO(g)+   O<sub>2</sub>(g)   CO<sub>2</sub>(g) C) 2Hg(l)+ O<sub>2</sub>(g)   2HgO(s) D) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(l) E) CaCO<sub>3</sub>(s)   CaO(s)+ CO<sub>2</sub>(g) CO(g)+ H2O(g)
B) CO(g)+ <strong>Which of the following equilibria would not be affected by pressure changes at constant temperature?</strong> A) CO<sub>2</sub>(g)+ H<sub>2</sub>(g)   CO(g)+  H<sub>2</sub>O(g) B) CO(g)+   O<sub>2</sub>(g)   CO<sub>2</sub>(g) C) 2Hg(l)+ O<sub>2</sub>(g)   2HgO(s) D) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(l) E) CaCO<sub>3</sub>(s)   CaO(s)+ CO<sub>2</sub>(g) O2(g) <strong>Which of the following equilibria would not be affected by pressure changes at constant temperature?</strong> A) CO<sub>2</sub>(g)+ H<sub>2</sub>(g)   CO(g)+  H<sub>2</sub>O(g) B) CO(g)+   O<sub>2</sub>(g)   CO<sub>2</sub>(g) C) 2Hg(l)+ O<sub>2</sub>(g)   2HgO(s) D) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(l) E) CaCO<sub>3</sub>(s)   CaO(s)+ CO<sub>2</sub>(g) CO2(g)
C) 2Hg(l)+ O2(g) <strong>Which of the following equilibria would not be affected by pressure changes at constant temperature?</strong> A) CO<sub>2</sub>(g)+ H<sub>2</sub>(g)   CO(g)+  H<sub>2</sub>O(g) B) CO(g)+   O<sub>2</sub>(g)   CO<sub>2</sub>(g) C) 2Hg(l)+ O<sub>2</sub>(g)   2HgO(s) D) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(l) E) CaCO<sub>3</sub>(s)   CaO(s)+ CO<sub>2</sub>(g) 2HgO(s)
D) 2H2(g)+ O2(g) <strong>Which of the following equilibria would not be affected by pressure changes at constant temperature?</strong> A) CO<sub>2</sub>(g)+ H<sub>2</sub>(g)   CO(g)+  H<sub>2</sub>O(g) B) CO(g)+   O<sub>2</sub>(g)   CO<sub>2</sub>(g) C) 2Hg(l)+ O<sub>2</sub>(g)   2HgO(s) D) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(l) E) CaCO<sub>3</sub>(s)   CaO(s)+ CO<sub>2</sub>(g) 2H2O(l)
E) CaCO3(s) <strong>Which of the following equilibria would not be affected by pressure changes at constant temperature?</strong> A) CO<sub>2</sub>(g)+ H<sub>2</sub>(g)   CO(g)+  H<sub>2</sub>O(g) B) CO(g)+   O<sub>2</sub>(g)   CO<sub>2</sub>(g) C) 2Hg(l)+ O<sub>2</sub>(g)   2HgO(s) D) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(l) E) CaCO<sub>3</sub>(s)   CaO(s)+ CO<sub>2</sub>(g) CaO(s)+ CO2(g)
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72
Consider the following equilibrium:
PCl5(g)  <strong>Consider the following equilibrium: PCl<sub>5</sub>(g)   PCl<sub>3</sub>(g)+ Cl<sub>2</sub>(g);  ~~~~~~~~   \Delta H = 92 kJ The concentration of PCl<sub>3</sub> at equilibrium may be increased by</strong> A) decreasing the temperature. B) adding Cl<sub>2</sub> to the system. C) adding PCl<sub>5</sub> to the system. D) increasing the pressure. E) adding a catalyst.  PCl3(g)+ Cl2(g);         ~~~~~~~~ Δ\Delta H = 92 kJ
The concentration of PCl3 at equilibrium may be increased by

A) decreasing the temperature.
B) adding Cl2 to the system.
C) adding PCl5 to the system.
D) increasing the pressure.
E) adding a catalyst.
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73
Given the following equilibria,
PbBr2(s)  <strong>Given the following equilibria, PbBr<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 Br<sup>-</sup>(aq)  ~~~~~~~~   ~~~~~~~~~~~~  K<sub>1</sub> = 6.6  \times 0 10<sup>-6</sup> Pb(OH)<sub>2</sub>(s)    Pb<sup>2+</sup>(aq)+ 2 OH<sup>-</sup>(aq) ~~~~~~~~   ~~~~~~~~  K<sub>2</sub> = 1.4  \times  10<sup>-15</sup> Determine the equilibrium constant,K<sub>c</sub>,for the following reaction. PbBr<sub>2</sub>(s)+ 2 OH<sup>-</sup>(aq)   Pb(OH)<sub>2</sub>(s)+ 2 Br<sup>-</sup>(aq)</strong> A) 9.2  \times  10<sup>-21</sup> B) 2.1  \times  10<sup>-10</sup> C) 6.6  \times  10<sup>-6</sup> D) 4.7  \times  10<sup>9</sup> E) 1.1  \times  10<sup>20</sup>  Pb2+(aq)+ 2 Br-(aq)         ~~~~~~~~             ~~~~~~~~~~~~ K1 = 6.6 ×\times 0 10-6
Pb(OH)2(s)  <strong>Given the following equilibria, PbBr<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 Br<sup>-</sup>(aq)  ~~~~~~~~   ~~~~~~~~~~~~  K<sub>1</sub> = 6.6  \times 0 10<sup>-6</sup> Pb(OH)<sub>2</sub>(s)    Pb<sup>2+</sup>(aq)+ 2 OH<sup>-</sup>(aq) ~~~~~~~~   ~~~~~~~~  K<sub>2</sub> = 1.4  \times  10<sup>-15</sup> Determine the equilibrium constant,K<sub>c</sub>,for the following reaction. PbBr<sub>2</sub>(s)+ 2 OH<sup>-</sup>(aq)   Pb(OH)<sub>2</sub>(s)+ 2 Br<sup>-</sup>(aq)</strong> A) 9.2  \times  10<sup>-21</sup> B) 2.1  \times  10<sup>-10</sup> C) 6.6  \times  10<sup>-6</sup> D) 4.7  \times  10<sup>9</sup> E) 1.1  \times  10<sup>20</sup>  Pb2+(aq)+ 2 OH-(aq)         ~~~~~~~~         ~~~~~~~~ K2 = 1.4 ×\times 10-15
Determine the equilibrium constant,Kc,for the following reaction.
PbBr2(s)+ 2 OH-(aq)  <strong>Given the following equilibria, PbBr<sub>2</sub>(s)   Pb<sup>2+</sup>(aq)+ 2 Br<sup>-</sup>(aq)  ~~~~~~~~   ~~~~~~~~~~~~  K<sub>1</sub> = 6.6  \times 0 10<sup>-6</sup> Pb(OH)<sub>2</sub>(s)    Pb<sup>2+</sup>(aq)+ 2 OH<sup>-</sup>(aq) ~~~~~~~~   ~~~~~~~~  K<sub>2</sub> = 1.4  \times  10<sup>-15</sup> Determine the equilibrium constant,K<sub>c</sub>,for the following reaction. PbBr<sub>2</sub>(s)+ 2 OH<sup>-</sup>(aq)   Pb(OH)<sub>2</sub>(s)+ 2 Br<sup>-</sup>(aq)</strong> A) 9.2  \times  10<sup>-21</sup> B) 2.1  \times  10<sup>-10</sup> C) 6.6  \times  10<sup>-6</sup> D) 4.7  \times  10<sup>9</sup> E) 1.1  \times  10<sup>20</sup>  Pb(OH)2(s)+ 2 Br-(aq)

A) 9.2 ×\times 10-21
B) 2.1 ×\times 10-10
C) 6.6 ×\times 10-6
D) 4.7 ×\times 109
E) 1.1 ×\times 1020
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74
Given the following equilibria,
Ni2+(aq)+ 2 OH-(aq)  <strong>Given the following equilibria, Ni<sup>2+</sup>(aq)+ 2 OH<sup>-</sup>(aq)   Ni(OH)<sub>2</sub>(s) ~~~~~~~~  K<sub>1</sub> = 1.8  \times  10<sup>15</sup> Ni<sup>2+</sup>(aq)+ 4 CN<sup>-</sup>(aq)   Ni(CN)<sub>4</sub><sup>2-</sup>(aq) ~~  ~~   K<sub>2</sub> = 2.0  \times 10<sup>31</sup> Determine the equilibrium constant,K<sub>c</sub>,for the following reaction. Ni(OH)<sub>2</sub>(s)+ 4 CN<sup>-</sup>(aq)   Ni(CN)<sub>4</sub><sup>2-</sup>(aq)+ 2 OH<sup>-</sup>(aq)</strong> A) 2.8  \times  10<sup>-47</sup> B) 9.0  \times  10<sup>-17</sup> C) 1.8  \times  10<sup>15</sup> D) 1.1  \times  10<sup>16</sup> E) 3.6  \times  10<sup>46</sup>  Ni(OH)2(s)         ~~~~~~~~ K1 = 1.8 ×\times 1015
Ni2+(aq)+ 4 CN-(aq)  <strong>Given the following equilibria, Ni<sup>2+</sup>(aq)+ 2 OH<sup>-</sup>(aq)   Ni(OH)<sub>2</sub>(s) ~~~~~~~~  K<sub>1</sub> = 1.8  \times  10<sup>15</sup> Ni<sup>2+</sup>(aq)+ 4 CN<sup>-</sup>(aq)   Ni(CN)<sub>4</sub><sup>2-</sup>(aq) ~~  ~~   K<sub>2</sub> = 2.0  \times 10<sup>31</sup> Determine the equilibrium constant,K<sub>c</sub>,for the following reaction. Ni(OH)<sub>2</sub>(s)+ 4 CN<sup>-</sup>(aq)   Ni(CN)<sub>4</sub><sup>2-</sup>(aq)+ 2 OH<sup>-</sup>(aq)</strong> A) 2.8  \times  10<sup>-47</sup> B) 9.0  \times  10<sup>-17</sup> C) 1.8  \times  10<sup>15</sup> D) 1.1  \times  10<sup>16</sup> E) 3.6  \times  10<sup>46</sup>  Ni(CN)42-(aq)     ~~ ~~ K2 = 2.0 ×\times 1031
Determine the equilibrium constant,Kc,for the following reaction.
Ni(OH)2(s)+ 4 CN-(aq)  <strong>Given the following equilibria, Ni<sup>2+</sup>(aq)+ 2 OH<sup>-</sup>(aq)   Ni(OH)<sub>2</sub>(s) ~~~~~~~~  K<sub>1</sub> = 1.8  \times  10<sup>15</sup> Ni<sup>2+</sup>(aq)+ 4 CN<sup>-</sup>(aq)   Ni(CN)<sub>4</sub><sup>2-</sup>(aq) ~~  ~~   K<sub>2</sub> = 2.0  \times 10<sup>31</sup> Determine the equilibrium constant,K<sub>c</sub>,for the following reaction. Ni(OH)<sub>2</sub>(s)+ 4 CN<sup>-</sup>(aq)   Ni(CN)<sub>4</sub><sup>2-</sup>(aq)+ 2 OH<sup>-</sup>(aq)</strong> A) 2.8  \times  10<sup>-47</sup> B) 9.0  \times  10<sup>-17</sup> C) 1.8  \times  10<sup>15</sup> D) 1.1  \times  10<sup>16</sup> E) 3.6  \times  10<sup>46</sup>  Ni(CN)42-(aq)+ 2 OH-(aq)

A) 2.8 ×\times 10-47
B) 9.0 ×\times 10-17
C) 1.8 ×\times 1015
D) 1.1 ×\times 1016
E) 3.6 ×\times 1046
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75
In which of the following reactions does a decrease in the volume of the reaction vessel at constant temperature favor formation of the products?

A) 2H2(g)+ O2(g) <strong>In which of the following reactions does a decrease in the volume of the reaction vessel at constant temperature favor formation of the products?</strong> A) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(g) B) NO<sub>2</sub>(g)+ CO(g)   NO(g)+ CO<sub>2</sub>(g) C) H<sub>2</sub>(g)+ I<sub>2</sub>(g)   2HI(g) D) 2O<sub>3</sub>(g)   3O<sub>2</sub>(g) E) MgCO<sub>3</sub>(s)   MgO(s)+ CO<sub>2</sub>(g) 2H2O(g)
B) NO2(g)+ CO(g) <strong>In which of the following reactions does a decrease in the volume of the reaction vessel at constant temperature favor formation of the products?</strong> A) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(g) B) NO<sub>2</sub>(g)+ CO(g)   NO(g)+ CO<sub>2</sub>(g) C) H<sub>2</sub>(g)+ I<sub>2</sub>(g)   2HI(g) D) 2O<sub>3</sub>(g)   3O<sub>2</sub>(g) E) MgCO<sub>3</sub>(s)   MgO(s)+ CO<sub>2</sub>(g) NO(g)+ CO2(g)
C) H2(g)+ I2(g) <strong>In which of the following reactions does a decrease in the volume of the reaction vessel at constant temperature favor formation of the products?</strong> A) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(g) B) NO<sub>2</sub>(g)+ CO(g)   NO(g)+ CO<sub>2</sub>(g) C) H<sub>2</sub>(g)+ I<sub>2</sub>(g)   2HI(g) D) 2O<sub>3</sub>(g)   3O<sub>2</sub>(g) E) MgCO<sub>3</sub>(s)   MgO(s)+ CO<sub>2</sub>(g) 2HI(g)
D) 2O3(g) <strong>In which of the following reactions does a decrease in the volume of the reaction vessel at constant temperature favor formation of the products?</strong> A) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(g) B) NO<sub>2</sub>(g)+ CO(g)   NO(g)+ CO<sub>2</sub>(g) C) H<sub>2</sub>(g)+ I<sub>2</sub>(g)   2HI(g) D) 2O<sub>3</sub>(g)   3O<sub>2</sub>(g) E) MgCO<sub>3</sub>(s)   MgO(s)+ CO<sub>2</sub>(g) 3O2(g)
E) MgCO3(s) <strong>In which of the following reactions does a decrease in the volume of the reaction vessel at constant temperature favor formation of the products?</strong> A) 2H<sub>2</sub>(g)+ O<sub>2</sub>(g)   2H<sub>2</sub>O(g) B) NO<sub>2</sub>(g)+ CO(g)   NO(g)+ CO<sub>2</sub>(g) C) H<sub>2</sub>(g)+ I<sub>2</sub>(g)   2HI(g) D) 2O<sub>3</sub>(g)   3O<sub>2</sub>(g) E) MgCO<sub>3</sub>(s)   MgO(s)+ CO<sub>2</sub>(g) MgO(s)+ CO2(g)
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76
Assume that the following chemical reaction is at equilibrium.
2 ICl(g)  <strong>Assume that the following chemical reaction is at equilibrium. 2 ICl(g)   I<sub>2</sub>(g)+ Cl<sub>2</sub>(g) ~~~~~~~~   ~~~~~~~~   \Delta H<sup> \circ </sup> = +26.9 kJ  At 25 <sup> \circ </sup>C,K<sub>p</sub> = 2.0  \times  10<sup>5</sup>.If the temperature is increase to 45 <sup> \circ </sup>C,which statement applies?</strong> A) K<sub>p</sub> will decrease and the reaction will proceed in the backward direction. B) K<sub>p</sub> will decrease and the reaction will proceed in the forward direction. C) K<sub>p</sub> will remain unchanged and the reaction will proceed in the forward direction. D) K<sub>p</sub> will increase and the reaction will proceed in the backward direction. E) K<sub>p</sub> will increase and the reaction will proceed in the forward direction.  I2(g)+ Cl2(g)         ~~~~~~~~         ~~~~~~~~ Δ\Delta H \circ = +26.9 kJ

At 25 \circ C,Kp = 2.0 ×\times 105.If the temperature is increase to 45 \circ C,which statement applies?

A) Kp will decrease and the reaction will proceed in the backward direction.
B) Kp will decrease and the reaction will proceed in the forward direction.
C) Kp will remain unchanged and the reaction will proceed in the forward direction.
D) Kp will increase and the reaction will proceed in the backward direction.
E) Kp will increase and the reaction will proceed in the forward direction.
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77
When the pressure of an equilibrium mixture of SO2,O2,and SO3 is doubled at constant temperature,what the effect on Kp?
2SO2(g)+ O2(g) <strong>When the pressure of an equilibrium mixture of SO<sub>2</sub>,O<sub>2</sub>,and SO<sub>3</sub> is doubled at constant temperature,what the effect on K<sub>p</sub>? 2SO<sub>2</sub>(g)+ O<sub>2</sub>(g)   2SO<sub>3</sub>(g)</strong> A) K<sub>p </sub>is halved. B) K<sub>p </sub>is doubled. C) K<sub>p </sub>is unchanged. D) K<sub>p </sub>is tripled. E) K<sub>p </sub>is decreased by a third. 2SO3(g)

A) Kp is halved.
B) Kp is doubled.
C) Kp is unchanged.
D) Kp is tripled.
E) Kp is decreased by a third.
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78
In 1913,the Haber-Bosch process was patented.The product of the Haber-Bosch process is ________.
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79
Given the equilibrium constants for the following reactions:
4Cu(s)+ O2(g) <strong>Given the equilibrium constants for the following reactions: 4Cu(s)+ O<sub>2</sub>(g)   2Cu<sub>2</sub>O(s),K<sub>1</sub> 4CuO(s)   2Cu<sub>2</sub>O(s)+ O<sub>2</sub>(g),K<sub>2</sub> What is K for the system 2Cu(s)+ O<sub>2</sub>(g)   2CuO(s) Equivalent to?</strong> A)   B)   C) (K<sub>1</sub>)(K<sub>2</sub>) D)   E)   2Cu2O(s),K1
4CuO(s) <strong>Given the equilibrium constants for the following reactions: 4Cu(s)+ O<sub>2</sub>(g)   2Cu<sub>2</sub>O(s),K<sub>1</sub> 4CuO(s)   2Cu<sub>2</sub>O(s)+ O<sub>2</sub>(g),K<sub>2</sub> What is K for the system 2Cu(s)+ O<sub>2</sub>(g)   2CuO(s) Equivalent to?</strong> A)   B)   C) (K<sub>1</sub>)(K<sub>2</sub>) D)   E)   2Cu2O(s)+ O2(g),K2
What is K for the system
2Cu(s)+ O2(g) <strong>Given the equilibrium constants for the following reactions: 4Cu(s)+ O<sub>2</sub>(g)   2Cu<sub>2</sub>O(s),K<sub>1</sub> 4CuO(s)   2Cu<sub>2</sub>O(s)+ O<sub>2</sub>(g),K<sub>2</sub> What is K for the system 2Cu(s)+ O<sub>2</sub>(g)   2CuO(s) Equivalent to?</strong> A)   B)   C) (K<sub>1</sub>)(K<sub>2</sub>) D)   E)   2CuO(s)
Equivalent to?

A) <strong>Given the equilibrium constants for the following reactions: 4Cu(s)+ O<sub>2</sub>(g)   2Cu<sub>2</sub>O(s),K<sub>1</sub> 4CuO(s)   2Cu<sub>2</sub>O(s)+ O<sub>2</sub>(g),K<sub>2</sub> What is K for the system 2Cu(s)+ O<sub>2</sub>(g)   2CuO(s) Equivalent to?</strong> A)   B)   C) (K<sub>1</sub>)(K<sub>2</sub>) D)   E)
B) <strong>Given the equilibrium constants for the following reactions: 4Cu(s)+ O<sub>2</sub>(g)   2Cu<sub>2</sub>O(s),K<sub>1</sub> 4CuO(s)   2Cu<sub>2</sub>O(s)+ O<sub>2</sub>(g),K<sub>2</sub> What is K for the system 2Cu(s)+ O<sub>2</sub>(g)   2CuO(s) Equivalent to?</strong> A)   B)   C) (K<sub>1</sub>)(K<sub>2</sub>) D)   E)
C) (K1)(K2)
D) <strong>Given the equilibrium constants for the following reactions: 4Cu(s)+ O<sub>2</sub>(g)   2Cu<sub>2</sub>O(s),K<sub>1</sub> 4CuO(s)   2Cu<sub>2</sub>O(s)+ O<sub>2</sub>(g),K<sub>2</sub> What is K for the system 2Cu(s)+ O<sub>2</sub>(g)   2CuO(s) Equivalent to?</strong> A)   B)   C) (K<sub>1</sub>)(K<sub>2</sub>) D)   E)
E) <strong>Given the equilibrium constants for the following reactions: 4Cu(s)+ O<sub>2</sub>(g)   2Cu<sub>2</sub>O(s),K<sub>1</sub> 4CuO(s)   2Cu<sub>2</sub>O(s)+ O<sub>2</sub>(g),K<sub>2</sub> What is K for the system 2Cu(s)+ O<sub>2</sub>(g)   2CuO(s) Equivalent to?</strong> A)   B)   C) (K<sub>1</sub>)(K<sub>2</sub>) D)   E)
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If a stress is applied to an equilibrium system,the system will respond in such a way as to relieve that stress.This is a statement of ________ principle.
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