Deck 19: Chemical Thermodynamics

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Question
The entropy change accompanying any process is given by the equation:

A)ΔS = k lnWfinal
B)ΔS = k Wfinal - k Winitial
C)ΔS = k ln(Wfinal / Winitial)
D)ΔS = k final - k initial
E)ΔS = Wfinal - Winitial
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Question
For an isothermal process,ΔS = ________.

A)q
B) <strong>For an isothermal process,ΔS = ________.</strong> A)q B)   /T C)qrev D)T   E)q + w <div style=padding-top: 35px> /T
C)qrev
D)T <strong>For an isothermal process,ΔS = ________.</strong> A)q B)   /T C)qrev D)T   E)q + w <div style=padding-top: 35px>
E)q + w
Question
Which one of the following is always positive when a spontaneous process occurs?

A)ΔSsystem
B)ΔSsurroundings
C)ΔSuniverse
D)ΔHuniverse
E)ΔHsurroundings
Question
The second law of thermodynamics states that ________.

A)ΔE = q + w
B)ΔH°rxn = Σ nΔH°f (products)- Σ mΔH°f (reactants)
C)for any spontaneous process, the entropy of the universe increases
D)the entropy of a pure crystalline substance is zero at absolute zero
E)ΔS = qrev/T at constant temperature
Question
ΔS is positive for the reaction ________.

A)2H2 (g)+ O2 (g)→ 2H2O (g)
B)2NO2 (g)→ N2O4 (g)
C)CO2 (g)→ CO2 (s)
D)BaF2 (s)→ Ba2+ (aq)+ 2F- (aq)
E)2Hg (l)+ O2 (g)→ 2HgO (s)
Question
ΔS is positive for the reaction ________.

A)2NO (g)+ O2 (g)→ 2NO2 (g)
B)2N2 (g)+ 3H2 (g)→ 2NH3 (g)
C)C3H8 (g)+ 5 O2 (g)→ 3CO2 (g)+ 4 H2O (g)
D)Mg (s)+ Cl2 (g)→ MgCl2 (s)
E)C2H4 (g)+ H2 (g)→ C2H6 (g)
Question
ΔS is positive for the reaction ________.

A)CaO (s)+ CO2 (g)→ CaCO3 (s)
B)N2 (g)+ 3H2 (g)→ 2NH3 (g)
C)2SO3 (g)→ 2SO2 (g)+ O2 (g)
D)Ag+ (aq)+ Cl- (aq)→ AgCl (s)
E)H2O (l)→ H2O (s)
Question
Which one of the following correctly indicates the relationship between the entropy of a system and the number of different arrangements,W,in the system?

A)S = kW
B)S = <strong>Which one of the following correctly indicates the relationship between the entropy of a system and the number of different arrangements,W,in the system?</strong> A)S = kW B)S =   C)S =   D)S = k lnW E)S = Wk <div style=padding-top: 35px>
C)S = <strong>Which one of the following correctly indicates the relationship between the entropy of a system and the number of different arrangements,W,in the system?</strong> A)S = kW B)S =   C)S =   D)S = k lnW E)S = Wk <div style=padding-top: 35px>
D)S = k lnW
E)S = Wk
Question
When a system is at equilibrium,________.

A)the reverse process is spontaneous but the forward process is not
B)the forward and the reverse processes are both spontaneous
C)the forward process is spontaneous but the reverse process is not
D)the process is not spontaneous in either direction
E)both forward and reverse processes have stopped
Question
A reversible process is one that ________.

A)can be reversed with no net change in either system or surroundings
B)happens spontaneously
C)is spontaneous in both directions
D)must be carried out at low temperature
E)must be carried out at high temperature
Question
The thermodynamic quantity that expresses the extent of randomness in a system is ________.

A)enthalpy
B)internal energy
C)bond energy
D)entropy
E)heat flow
Question
Which one of the following processes produces a decrease of the entropy of the system?

A)dissolving sodium chloride in water
B)sublimation of naphthalene
C)dissolving oxygen in water
D)boiling of alcohol
E)explosion of nitroglycerine
Question
A reaction that is spontaneous as written ________.

A)is very rapid
B)will proceed without outside intervention
C)is also spontaneous in the reverse direction
D)has an equilibrium position that lies far to the left
E)is very slow
Question
Consider a pure crystalline solid that is heated from absolute zero to a temperature above the boiling point of the liquid.Which of the following processes produces the greatest increase in the entropy of the substance?

A)melting the solid
B)heating the liquid
C)heating the gas
D)heating the solid
E)vaporizing the liquid
Question
The first law of thermodynamics can be given as ________.

A)ΔE = q + w
B)Δ <strong>The first law of thermodynamics can be given as ________.</strong> A)ΔE = q + w B)Δ   =   -   C)for any spontaneous process, the entropy of the universe increases D)the entropy of a pure crystalline substance at absolute zero is zero E)ΔS =   /T at constant temperature <div style=padding-top: 35px> = <strong>The first law of thermodynamics can be given as ________.</strong> A)ΔE = q + w B)Δ   =   -   C)for any spontaneous process, the entropy of the universe increases D)the entropy of a pure crystalline substance at absolute zero is zero E)ΔS =   /T at constant temperature <div style=padding-top: 35px> - <strong>The first law of thermodynamics can be given as ________.</strong> A)ΔE = q + w B)Δ   =   -   C)for any spontaneous process, the entropy of the universe increases D)the entropy of a pure crystalline substance at absolute zero is zero E)ΔS =   /T at constant temperature <div style=padding-top: 35px>
C)for any spontaneous process, the entropy of the universe increases
D)the entropy of a pure crystalline substance at absolute zero is zero
E)ΔS = <strong>The first law of thermodynamics can be given as ________.</strong> A)ΔE = q + w B)Δ   =   -   C)for any spontaneous process, the entropy of the universe increases D)the entropy of a pure crystalline substance at absolute zero is zero E)ΔS =   /T at constant temperature <div style=padding-top: 35px> /T at constant temperature
Question
Which of the following statements is true?

A)Processes that are spontaneous in one direction are spontaneous in the opposite direction.
B)Processes are spontaneous because they occur at an observable rate.
C)Spontaneity can depend on the temperature.
D)All of the statements are true.
Question
ΔS is positive for the reaction ________.

A)2 Ca (s)+ O2 (g)→ 2 CaO (s)
B)2 KClO3 (s)→ 2KCl (s)+ 3 O2 (g)
C)HCl (g)+ NH3 (g)→ NH4Cl (s)
D)Pb2+ (aq)+ 2Cl- (aq)→ PbCl2 (s)
E)CO2 (g)→ CO2 (s)
Question
The entropy of the universe is ________.

A)constant
B)continually decreasing
C)continually increasing
D)zero
E)the same as the energy, E
Question
Which of the following statements is false?

A)The change in entropy in a system depends on the initial and final states of the system and the path taken from one state to the other.
B)Any irreversible process results in an overall increase in entropy.
C)The total entropy of the universe increases in any spontaneous process.
D)Entropy increases with the number of microstates of the system.
Question
Of the following,only ________ is not a state function.

A)S
B)H
C)q
D)E
E)T
Question
Consider the reaction: NH3 (g)+ HCl (g)→ NH4Cl (s)
Given the following table of thermodynamic data, <strong>Consider the reaction: NH<sub>3</sub> (g)+ HCl (g)→ NH<sub>4</sub>Cl (s) Given the following table of thermodynamic data,   determine the temperature (in °C)above which the reaction is nonspontaneous.</strong> A)This reaction is spontaneous at all temperatures. B)618.1 C)432.8 D)345.0 E)1235 <div style=padding-top: 35px> determine the temperature (in °C)above which the reaction is nonspontaneous.

A)This reaction is spontaneous at all temperatures.
B)618.1
C)432.8
D)345.0
E)1235
Question
Consider the reaction: FeO (s)+ Fe (s)+ O2 (g)→ Fe2O3 (s)
Given the following table of thermodynamic data, <strong>Consider the reaction: FeO (s)+ Fe (s)+ O<sub>2 </sub>(g)→ Fe<sub>2</sub>O<sub>3</sub> (s) Given the following table of thermodynamic data,   determine the temperature (in °C)at which the reaction is nonspontaneous.</strong> A)below 618.1 B)above 2438 C)above 756.3 D)below 2438 E)This reaction is spontaneous at all temperatures. <div style=padding-top: 35px> determine the temperature (in °C)at which the reaction is nonspontaneous.

A)below 618.1
B)above 2438
C)above 756.3
D)below 2438
E)This reaction is spontaneous at all temperatures.
Question
Consider the reaction: Ag+ (aq)+ Cl- (aq)→ AgCl (s)
Given the following table of thermodynamic data, <strong>Consider the reaction: Ag<sup>+</sup> (aq)+ Cl<sup>-</sup> (aq)→ AgCl (s) Given the following table of thermodynamic data,   determine the temperature (in °C)above which the reaction is nonspontaneous under standard conditions.</strong> A)1230 B)150 C)432 D)133 E)1640 <div style=padding-top: 35px> determine the temperature (in °C)above which the reaction is nonspontaneous under standard conditions.

A)1230
B)150
C)432
D)133
E)1640
Question
Given the following table of thermodynamic data, <strong>Given the following table of thermodynamic data,   complete the following sentence.The vaporization of Ti   is ________.</strong> A)spontaneous at all temperatures B)spontaneous at low temperature and nonspontaneous at high temperature C)nonspontaneous at low temperature and spontaneous at high temperature D)nonspontaneous at all temperatures E)not enough information given to draw a conclusion <div style=padding-top: 35px> complete the following sentence.The vaporization of Ti <strong>Given the following table of thermodynamic data,   complete the following sentence.The vaporization of Ti   is ________.</strong> A)spontaneous at all temperatures B)spontaneous at low temperature and nonspontaneous at high temperature C)nonspontaneous at low temperature and spontaneous at high temperature D)nonspontaneous at all temperatures E)not enough information given to draw a conclusion <div style=padding-top: 35px> is ________.

A)spontaneous at all temperatures
B)spontaneous at low temperature and nonspontaneous at high temperature
C)nonspontaneous at low temperature and spontaneous at high temperature
D)nonspontaneous at all temperatures
E)not enough information given to draw a conclusion
Question
For an isothermal process,the entropy change of the surroundings is given by the equation:

A)ΔS = qsys T
B)ΔS = -qsys T
C)ΔS = q lnT
D)ΔS = -q lnT
E)ΔS = -qsys / T
Question
ΔS is positive for the reaction ________.

A)Pb(NO3)2 (aq)+ 2KI(aq)→ PbI2 (s)+ 2KNO3 (aq)
B)2H2O (g)→ 2H2 (g)+ O2 (g)
C)H2O (g)→ H2O (s)
D)NO (g)+ O2 (g)→ NO2 (g)
E)Ag+ (aq)+ Cl- (aq)→ AgCl (s)
Question
Which one of the following statements is true about the equilibrium constant for a reaction if ΔG° for the reaction is negative?

A)K = 0
B)K = 1
C)K > 1
D)K < 1
E)More information is needed.
Question
Which reaction produces a decrease in the entropy of the system?

A)CaCO3 (s)→ CaO (s)+ CO2 (g)
B)2C (s)+ O2 (g)→ 2CO (g)
C)CO2 (s)→ CO2 (g)
D)2H2 (g)+ O2 (g)→ 2H2O (l)
E)H2O (l)→ H2O (g)
Question
Which reaction produces an increase in the entropy of the system?

A)Ag+ (aq)+ Cl- (aq)→ AgCl (s)
B)CO2 (s)→ CO2 (g)
C)H2 (g)+ Cl2 (g)→ 2 HCl (g)
D)N2 (g)+ 3 H2 (g)→ 2 NH3 (g)
E)H2O (l)→ H2O (s)
Question
With thermodynamics,one cannot determine ________.

A)the speed of a reaction
B)the direction of a spontaneous reaction
C)the extent of a reaction
D)the value of the equilibrium constant
E)the temperature at which a reaction will be spontaneous
Question
A reaction that is not spontaneous at low temperature can become spontaneous at high temperature if <strong>A reaction that is not spontaneous at low temperature can become spontaneous at high temperature if   is ________ and   is ________.</strong> A)+, + B)-, - C)+, - D)-, + E)+, 0 <div style=padding-top: 35px> is ________ and <strong>A reaction that is not spontaneous at low temperature can become spontaneous at high temperature if   is ________ and   is ________.</strong> A)+, + B)-, - C)+, - D)-, + E)+, 0 <div style=padding-top: 35px> is ________.

A)+, +
B)-, -
C)+, -
D)-, +
E)+, 0
Question
The equilibrium position corresponds to which letter on the graph of G vs.f (course of reaction)below? <strong>The equilibrium position corresponds to which letter on the graph of G vs.f (course of reaction)below?  </strong> A)A B)B C)C D)D E)E <div style=padding-top: 35px>

A)A
B)B
C)C
D)D
E)E
Question
A decrease in the entropy of the system is observed for the reaction ________.

A)4 NH3 (g)+ 5 O2 (g)→ 4 NO (g)+ 6 H2O (g)
B)2 HgO (s)→ 2 Hg (l)+ O2 (g)
C)UF6 (s)→ U (s)+ 3F2 (g)
D)K (s)+ 1/2 I2 (g)→ KI (s)
E)H2O (s)→ H2O (g)
Question
The value of ΔS° for the catalytic hydrogenation of ethene to ethane, C2H4 (g)+ H2(g)→ C2H6 (g)
Is ________ J/K ∙ mol.

A)-101.9
B)-120.5
C)-232.5
D)+112.0
E)+101.9
Question
The combustion of acetylene in the presence of excess oxygen yields carbon dioxide and water: 2C2H2 (g)+ 5O2 (g)→ 4CO2 (g)+ 2H2O (l)
The value of ΔS° for this reaction is ________ J/K ∙ mol.

A)+689.3
B)+122.3
C)+432.4
D)-122.3
E)-432.4
Question
For the reaction 2 C4H10 (g)+ 13 O2 (g)→ 8 CO2 (g)+ 10 H2O (g)
ΔH° is -125 kJ/mol and ΔS° is +253 J/K ∙ mol.This reaction is ________.

A)spontaneous at all temperatures
B)spontaneous only at high temperature
C)spontaneous only at low temperature
D)nonspontaneous at all temperatures
E)unable to determine without more information
Question
The value of ΔS° for the reaction 2C (s,diamond)+ O2 (g)→ 2CO (g)
Is ________ J/K ∙ mol.

A)-185.9
B)+185.9
C)-9.5
D)+9.5
E)-195.7
Question
Which of the following reactions would have a negative ΔS?

A)NH4Cl (s)→ NH3 (g)+ HCl (g)
B)PbCl2 (s)→ Pb2+ (aq)+ 2Cl- (aq)
C)2C (s)+ O2 (g)→ 2CO2 (g)
D)2SO2 (g)+ O2 (g)→ 2SO3 (g)
E)H2O (l)→ H2O (g)
Question
For the reaction C2H6 (g)→ C2H4 (g)+ H2 (g)
ΔH° is +137 kJ/mol and ΔS° is +120 J/K ∙ mol.This reaction is ________.

A)spontaneous at all temperatures
B)spontaneous only at high temperature
C)spontaneous only at low temperature
D)nonspontaneous at all temperatures
Question
The value of ΔS° for the catalytic hydrogenation of acetylene to ethene, C2H2 (g)+ H2 (g)→ C2H4 (g)
Is ________ J/K∙ mol.

A)+18.6
B)+550.8
C)+112.0
D)-112.0
E)-18.6
Question
The value of ΔH° for the decomposition of gaseous sulfur trioxide to its component elements,
2SO3 (g)→ 2S (s,rhombic)+ 3O2 (g)
Is ________ kJ/mol.

A)+790.4
B)-790.4
C)+395.2
D)-395.2
E)+105.1
Question
The value of ΔH° for the oxidation of solid elemental sulfur to gaseous sulfur trioxide,
2S (s,rhombic)+ 3O2( g)→ 2SO3 (g)
Is ________ kJ/mol.

A)+790.4
B)-790.4
C)+395.2
D)-395.2
E)+105.1
Question
The combustion of ethane in the presence of excess oxygen yields carbon dioxide and water: 2C2H6 (g)+ 7O2 (g)→ 4CO2 (g)+ 6H2O (l)
The value of ΔS° for this reaction is ________ J/K ∙ mol.

A)+718.0
B)-620.1
C)-718.0
D)-151.0
E)+151.0
Question
The value of ΔS° for the decomposition of calcium chloride into its constituent elements, CaCl2 (s)→ Ca (s)+ Cl2 (g)
Is ________ J/K ∙ mol.

A)-104.6
B)+104.6
C)+369.0
D)-159.8
E)+159.8
Question
The value of ΔS° for the catalytic hydrogenation of acetylene to ethane, C2H2 (g)+ 2H2 (g)→ C2H6 (g)
Is ________ J/K ∙ mol.

A)-76.0
B)+440.9
C)-232.5
D)+232.5
E)+28.7
Question
The value of ΔS° for the formation of calcium chloride from its constituent elements, Ca (s)+ Cl2 (g)→ CaCl2 (s)
Is ________ J/K ∙ mol.

A)-104.6
B)+104.6
C)+369.0
D)-159.8
E)+159.8
Question
The value of ΔS° for the formation of phosphorous trichloride from its constituent elements, P2 (g)+ 3Cl2 (g)→ 2PCl3 (g)
Is ________ J/K ∙ mol.

A)-311.7
B)+311.7
C)-263.6
D)+129.4
E)-129.4
Question
The value of ΔS° for the formation of POCl3 from its constituent elements, P2 (g)+ O2 (g)+ 3Cl2 (g)→ 2POCl3 (g)
Is ________ J/K ∙ mol.

A)-442.0
B)+771.0
C)-321.0
D)-771.0
E)+321.0
Question
The combustion of hydrogen in the presence of excess oxygen yields liquid water: What is the value of ΔS° in J/K ∙ mol.for this reaction?

A)-405.5
B)+405.5
C)-265.7
D)-326.3
E)+265.7
Question
The combustion of ethene in the presence of excess oxygen yields carbon dioxide and water: C2H4 (g)+ 3O2 (g)→ 2CO2 (g)+ 2H2O (l)
The value of ΔS° for this reaction is ________ J/K ∙ mol.

A)-267.4
B)-140.9
C)-347.6
D)+347.6
E)+140.9
Question
The value of ΔS° for the decomposition of gaseous sulfur trioxide to solid elemental sulfur and gaseous oxygen,
2SO3 (g)→ 2S (s,rhombic)+ 3O2 (g)
Is ________ J/K ∙ mol.

A)+19.3
B)-19.3
C)+493.1
D)+166.4
E)-493.1
Question
The value of ΔH° for the decomposition of gaseous sulfur dioxide to solid elemental sulfur and gaseous oxygen, SO2 (g)→ S (s,rhombic)+ O2 (g)
Is ________ kJ/mol.

A)0.0
B)+135.0
C)-135.90
D)-269.9
E)+269.9
Question
The value of ΔS° for the oxidation of carbon to carbon monoxide,
2C (s,graphite)+ O2 (g)→ 2CO (g)
Is ________ J/K ∙ mol.Carbon monoxide is produced in the combustion of carbon with limited oxygen.

A)-12.8
B)+408.6
C)-408.6
D)+179.4
E)+395.8
Question
The value of ΔH° for the oxidation of solid elemental sulfur to gaseous sulfur dioxide,
S (s,rhombic)+ O2 (g)→ SO2 (g)
Is ________ kJ/mol.

A)+269.9
B)-269.9
C)+0.00
D)-11.6
E)+11.6
Question
The value of ΔS° for the decomposition of gaseous sulfur dioxide to solid elemental sulfur and gaseous oxygen,
SO2 (g)→ S (s,rhombic)+ O2 (g)
Is ________ J/K ∙ mol.

A)+485.4
B)+248.5
C)-11.6
D)-248.5
E)+11.6
Question
The value of ΔS° for the decomposition of POCl3 into its constituent elements, 2POCl3 (g)→ P2 (g)+ O2 (g)+ 3Cl2 (g)
Is ________ J/K ∙ mol.

A)+771.0
B)+442.0
C)-321.0
D)-771.0
E)+321.0
Question
The value of ΔS° for the decomposition of phosphorous trichloride into its constituent elements, 2PCl3 (g)→ P2 (g)+ 3Cl2( g)
Is ________ J/K ∙ mol.

A)-311.7
B)+311.7
C)+263.6
D)+129.4
E)-129.4
Question
The value of ΔS° for the oxidation of solid elemental sulfur to gaseous sulfur trioxide,
2S (s,rhombic)+ 3O2(g)→ 2SO3 (g)
Is ________ J/K mol.

A)+19.3
B)-19.3
C)+493.1
D)-166.4
E)-493.1
Question
The value of ΔS° for the oxidation of solid elemental sulfur to gaseous sulfur dioxide,
S (s,rhombic)+ O2(g)→ SO2(g)
Is ________ J/K ∙ mol.

A)+485.4
B)+248.5
C)-11.6
D)-248.5
E)+11.6
Question
The value of ΔS° for the oxidation of carbon to carbon dioxide,
C (s,graphite)+ O2 (g)→ CO2(g)
Is ________ J/K ∙ mol.The combustion of carbon,as in charcoal briquettes,in the presence of abundant oxygen produces carbon dioxide.

A)+424.3
B)+205.0
C)-205.0
D)-2.9
E)+2.9
Question
The value of ΔG° at 25 °C for the decomposition of gaseous sulfur trioxide to solid elemental sulfur and gaseous oxygen, 2SO3 (g)→ 2S (s,rhombic)+ 3O2 (g)
Is ________ kJ/mol.

A)+740.8
B)-370.4
C)+370.4
D)-740.8
E)+185.2
Question
The value of ΔH° for the decomposition of POCl3 into its constituent elements, 2POCl3 (g)→ P2 (g)+ O2 (g)+ 3Cl2 (g)
Is ________ kJ/mol.

A)-1228.7
B)+1228.7
C)-940.1
D)+940.1
E)0.00
Question
The value of ΔG° at 25 °C for the formation of POCl3 from its constituent elements, P2 (g)+ O2 (g)+ 3Cl2 (g)→ 2POCl3 (g)
Is ________ kJ/mol.

A)-1108.7
B)+1108.7
C)-606.2
D)+606.2
E)-1,005
Question
The value of ΔG° at 25 °C for the formation of phosphorous trichloride from its constituent elements, P2 (g)+ 3Cl2 (g)→ 2PCl3 (g)
Is ________ kJ/mol.

A)-539.2
B)+539.2
C)-642.9
D)+642.9
E)-373.3
Question
The value of ΔH° for the decomposition of phosphorous trichloride into its constituent elements, 2PCl3 (g)→ P2 (g)+ 3Cl2 (g)
Is ________ kJ/mol.

A)+576.2
B)-288.1
C)+720.5
D)+288.1
E)-720.5
Question
Given the thermodynamic data in the table below,calculate the equilibrium constant (at 298 K)for the reaction: 2 SO2 (g)+ O2 (g) <strong>Given the thermodynamic data in the table below,calculate the equilibrium constant (at 298 K)for the reaction: 2 SO<sub>2</sub> (g)+ O<sub>2</sub> (g)   2 SO<sub>3</sub> (g)  </strong> A)2.40 × 10<sup>24</sup> B)1.06 C)1.95 D)3.82 × 10<sup>23</sup> E)More data are needed. <div style=padding-top: 35px> 2 SO3 (g) <strong>Given the thermodynamic data in the table below,calculate the equilibrium constant (at 298 K)for the reaction: 2 SO<sub>2</sub> (g)+ O<sub>2</sub> (g)   2 SO<sub>3</sub> (g)  </strong> A)2.40 × 10<sup>24</sup> B)1.06 C)1.95 D)3.82 × 10<sup>23</sup> E)More data are needed. <div style=padding-top: 35px>

A)2.40 × 1024
B)1.06
C)1.95
D)3.82 × 1023
E)More data are needed.
Question
The value of ΔG° at 25 °C for the decomposition of POCl3 into its constituent elements, 2POCl3 (g)→ P2 (g)+ O2 (g)+ 3Cl2 (g)
Is ________ kJ/mol.

A)-1108.7
B)+1108.7
C)-606.2
D)+606.2
E)-1,005
Question
The value of ΔG° at 25 °C for the decomposition of calcium chloride into its constituent elements, CaCl2 (s)→ Ca (s)+ Cl2 (g)
Is ________ kJ/mol.

A)-795.8
B)+795.8
C)+763.7
D)+748.1
E)-748.1
Question
The value of ΔH° for the formation of phosphorous trichloride from its constituent elements, P2 (g)+ 3Cl2 (g)→ 2PCl3 (g)
Is ________ kJ/mol

A)-288.1
B)+432.4
C)-720.5
D)+720.5
E)-432.4
Question
The value of ΔG° at 25 °C for the decomposition of gaseous sulfur dioxide to solid elemental sulfur and gaseous oxygen, SO2 (g)→ S (s,rhombic)+ O2 (g)
Is ________ kJ/mol.

A)+395.2
B)+269.9
C)-269.9
D)+300.4
E)-300.4
Question
The value of ΔH° for the decomposition of calcium chloride into its constituent elements, CaCl2 (s)→ Ca (s)+ Cl2 (g)
Is ________ kJ/mol.

A)0.00
B)-397.9
C)+397.9
D)-795.8
E)+795.8
Question
The value of ΔG° at 25 °C for the formation of calcium chloride from its constituent elements, Ca (s)+ Cl2 (g)→ CaCl2 (s)
Is ________ kJ/mol.

A)-795.8
B)+795.8
C)+763.7
D)+748.1
E)-748.1
Question
The value of ΔG° at 373 K for the oxidation of solid elemental sulfur to gaseous sulfur dioxide is ________ kJ/mol.At 298 K,ΔH° for this reaction is -269.9 kJ/mol,and ΔS° is +11.6 J/K.

A)-300.4
B)-274.2
C)-4,597
D)+300.4
E)+4,597
Question
The value of ΔG° at 25 °C for the oxidation of solid elemental sulfur to gaseous sulfur trioxide, 2S (s,rhombic)+ 3O2 (g)→ 2SO3 (g)
Is ________ kJ/mol.

A)+740.8
B)-370.4
C)+370.4
D)-740.8
E)+185.2
Question
The value of ΔG° at 25 °C for the oxidation of solid elemental sulfur to gaseous sulfur dioxide, S (s,rhombic)+ O2(g)→ SO2 (g)
Is ________ kJ/mol.

A)+395.2
B)+269.9
C)-269.9
D)+300.4
E)-300.4
Question
The value of ΔG° at 25 °C for the decomposition of phosphorous trichloride into its constituent elements, 2PCl3 (g)→ P2 (g)+ 3Cl2 (g)
Is ________ kJ/mol.

A)-539.2
B)+539.2
C)-642.9
D)+642.9
E)-373.3
Question
The value of ΔG° for a reaction conducted at 25 °C is 3.05 kJ/mol.The equilibrium constant for a reaction is ________ at this temperature.

A)0.292
B)-4.20
C)0.320
D)-1.13
E)More information is needed.
Question
The value of ΔH° for the formation of calcium chloride from its constituent elements, Ca (s)+ Cl2 (g)→ CaCl2 (s)
Is ________ kJ/mol.

A)0.00
B)-397.9
C)+397.9
D)-795.8
E)+795.8
Question
The value of ΔG° at 25 °C for the following reaction: C2H4 (g)+ H2 (g)→ C2H6 (g)
Is ________ kJ/mol.At 298 K,ΔH° for this reaction is -137.5 kJ/mol,and ΔS° is +120.5 J/K.

A)-35800
B)-173.4
C)35800
D)-101.7
E)-274.2
Question
The value of ΔH° for the formation of POCl3 from its constituent elements, P2 (g)+ O2 (g)+ 3Cl2 (g)→ 2POCl3 (g)
Is ________ kJ/mol.

A)-1228.7
B)-397.7
C)-686.5
D)+1228.7
E)+686.5
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Deck 19: Chemical Thermodynamics
1
The entropy change accompanying any process is given by the equation:

A)ΔS = k lnWfinal
B)ΔS = k Wfinal - k Winitial
C)ΔS = k ln(Wfinal / Winitial)
D)ΔS = k final - k initial
E)ΔS = Wfinal - Winitial
ΔS = k ln(Wfinal / Winitial)
2
For an isothermal process,ΔS = ________.

A)q
B) <strong>For an isothermal process,ΔS = ________.</strong> A)q B)   /T C)qrev D)T   E)q + w /T
C)qrev
D)T <strong>For an isothermal process,ΔS = ________.</strong> A)q B)   /T C)qrev D)T   E)q + w
E)q + w
  /T /T
3
Which one of the following is always positive when a spontaneous process occurs?

A)ΔSsystem
B)ΔSsurroundings
C)ΔSuniverse
D)ΔHuniverse
E)ΔHsurroundings
ΔSuniverse
4
The second law of thermodynamics states that ________.

A)ΔE = q + w
B)ΔH°rxn = Σ nΔH°f (products)- Σ mΔH°f (reactants)
C)for any spontaneous process, the entropy of the universe increases
D)the entropy of a pure crystalline substance is zero at absolute zero
E)ΔS = qrev/T at constant temperature
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5
ΔS is positive for the reaction ________.

A)2H2 (g)+ O2 (g)→ 2H2O (g)
B)2NO2 (g)→ N2O4 (g)
C)CO2 (g)→ CO2 (s)
D)BaF2 (s)→ Ba2+ (aq)+ 2F- (aq)
E)2Hg (l)+ O2 (g)→ 2HgO (s)
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6
ΔS is positive for the reaction ________.

A)2NO (g)+ O2 (g)→ 2NO2 (g)
B)2N2 (g)+ 3H2 (g)→ 2NH3 (g)
C)C3H8 (g)+ 5 O2 (g)→ 3CO2 (g)+ 4 H2O (g)
D)Mg (s)+ Cl2 (g)→ MgCl2 (s)
E)C2H4 (g)+ H2 (g)→ C2H6 (g)
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7
ΔS is positive for the reaction ________.

A)CaO (s)+ CO2 (g)→ CaCO3 (s)
B)N2 (g)+ 3H2 (g)→ 2NH3 (g)
C)2SO3 (g)→ 2SO2 (g)+ O2 (g)
D)Ag+ (aq)+ Cl- (aq)→ AgCl (s)
E)H2O (l)→ H2O (s)
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8
Which one of the following correctly indicates the relationship between the entropy of a system and the number of different arrangements,W,in the system?

A)S = kW
B)S = <strong>Which one of the following correctly indicates the relationship between the entropy of a system and the number of different arrangements,W,in the system?</strong> A)S = kW B)S =   C)S =   D)S = k lnW E)S = Wk
C)S = <strong>Which one of the following correctly indicates the relationship between the entropy of a system and the number of different arrangements,W,in the system?</strong> A)S = kW B)S =   C)S =   D)S = k lnW E)S = Wk
D)S = k lnW
E)S = Wk
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9
When a system is at equilibrium,________.

A)the reverse process is spontaneous but the forward process is not
B)the forward and the reverse processes are both spontaneous
C)the forward process is spontaneous but the reverse process is not
D)the process is not spontaneous in either direction
E)both forward and reverse processes have stopped
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10
A reversible process is one that ________.

A)can be reversed with no net change in either system or surroundings
B)happens spontaneously
C)is spontaneous in both directions
D)must be carried out at low temperature
E)must be carried out at high temperature
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11
The thermodynamic quantity that expresses the extent of randomness in a system is ________.

A)enthalpy
B)internal energy
C)bond energy
D)entropy
E)heat flow
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12
Which one of the following processes produces a decrease of the entropy of the system?

A)dissolving sodium chloride in water
B)sublimation of naphthalene
C)dissolving oxygen in water
D)boiling of alcohol
E)explosion of nitroglycerine
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13
A reaction that is spontaneous as written ________.

A)is very rapid
B)will proceed without outside intervention
C)is also spontaneous in the reverse direction
D)has an equilibrium position that lies far to the left
E)is very slow
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14
Consider a pure crystalline solid that is heated from absolute zero to a temperature above the boiling point of the liquid.Which of the following processes produces the greatest increase in the entropy of the substance?

A)melting the solid
B)heating the liquid
C)heating the gas
D)heating the solid
E)vaporizing the liquid
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15
The first law of thermodynamics can be given as ________.

A)ΔE = q + w
B)Δ <strong>The first law of thermodynamics can be given as ________.</strong> A)ΔE = q + w B)Δ   =   -   C)for any spontaneous process, the entropy of the universe increases D)the entropy of a pure crystalline substance at absolute zero is zero E)ΔS =   /T at constant temperature = <strong>The first law of thermodynamics can be given as ________.</strong> A)ΔE = q + w B)Δ   =   -   C)for any spontaneous process, the entropy of the universe increases D)the entropy of a pure crystalline substance at absolute zero is zero E)ΔS =   /T at constant temperature - <strong>The first law of thermodynamics can be given as ________.</strong> A)ΔE = q + w B)Δ   =   -   C)for any spontaneous process, the entropy of the universe increases D)the entropy of a pure crystalline substance at absolute zero is zero E)ΔS =   /T at constant temperature
C)for any spontaneous process, the entropy of the universe increases
D)the entropy of a pure crystalline substance at absolute zero is zero
E)ΔS = <strong>The first law of thermodynamics can be given as ________.</strong> A)ΔE = q + w B)Δ   =   -   C)for any spontaneous process, the entropy of the universe increases D)the entropy of a pure crystalline substance at absolute zero is zero E)ΔS =   /T at constant temperature /T at constant temperature
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16
Which of the following statements is true?

A)Processes that are spontaneous in one direction are spontaneous in the opposite direction.
B)Processes are spontaneous because they occur at an observable rate.
C)Spontaneity can depend on the temperature.
D)All of the statements are true.
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17
ΔS is positive for the reaction ________.

A)2 Ca (s)+ O2 (g)→ 2 CaO (s)
B)2 KClO3 (s)→ 2KCl (s)+ 3 O2 (g)
C)HCl (g)+ NH3 (g)→ NH4Cl (s)
D)Pb2+ (aq)+ 2Cl- (aq)→ PbCl2 (s)
E)CO2 (g)→ CO2 (s)
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18
The entropy of the universe is ________.

A)constant
B)continually decreasing
C)continually increasing
D)zero
E)the same as the energy, E
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19
Which of the following statements is false?

A)The change in entropy in a system depends on the initial and final states of the system and the path taken from one state to the other.
B)Any irreversible process results in an overall increase in entropy.
C)The total entropy of the universe increases in any spontaneous process.
D)Entropy increases with the number of microstates of the system.
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20
Of the following,only ________ is not a state function.

A)S
B)H
C)q
D)E
E)T
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21
Consider the reaction: NH3 (g)+ HCl (g)→ NH4Cl (s)
Given the following table of thermodynamic data, <strong>Consider the reaction: NH<sub>3</sub> (g)+ HCl (g)→ NH<sub>4</sub>Cl (s) Given the following table of thermodynamic data,   determine the temperature (in °C)above which the reaction is nonspontaneous.</strong> A)This reaction is spontaneous at all temperatures. B)618.1 C)432.8 D)345.0 E)1235 determine the temperature (in °C)above which the reaction is nonspontaneous.

A)This reaction is spontaneous at all temperatures.
B)618.1
C)432.8
D)345.0
E)1235
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22
Consider the reaction: FeO (s)+ Fe (s)+ O2 (g)→ Fe2O3 (s)
Given the following table of thermodynamic data, <strong>Consider the reaction: FeO (s)+ Fe (s)+ O<sub>2 </sub>(g)→ Fe<sub>2</sub>O<sub>3</sub> (s) Given the following table of thermodynamic data,   determine the temperature (in °C)at which the reaction is nonspontaneous.</strong> A)below 618.1 B)above 2438 C)above 756.3 D)below 2438 E)This reaction is spontaneous at all temperatures. determine the temperature (in °C)at which the reaction is nonspontaneous.

A)below 618.1
B)above 2438
C)above 756.3
D)below 2438
E)This reaction is spontaneous at all temperatures.
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23
Consider the reaction: Ag+ (aq)+ Cl- (aq)→ AgCl (s)
Given the following table of thermodynamic data, <strong>Consider the reaction: Ag<sup>+</sup> (aq)+ Cl<sup>-</sup> (aq)→ AgCl (s) Given the following table of thermodynamic data,   determine the temperature (in °C)above which the reaction is nonspontaneous under standard conditions.</strong> A)1230 B)150 C)432 D)133 E)1640 determine the temperature (in °C)above which the reaction is nonspontaneous under standard conditions.

A)1230
B)150
C)432
D)133
E)1640
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24
Given the following table of thermodynamic data, <strong>Given the following table of thermodynamic data,   complete the following sentence.The vaporization of Ti   is ________.</strong> A)spontaneous at all temperatures B)spontaneous at low temperature and nonspontaneous at high temperature C)nonspontaneous at low temperature and spontaneous at high temperature D)nonspontaneous at all temperatures E)not enough information given to draw a conclusion complete the following sentence.The vaporization of Ti <strong>Given the following table of thermodynamic data,   complete the following sentence.The vaporization of Ti   is ________.</strong> A)spontaneous at all temperatures B)spontaneous at low temperature and nonspontaneous at high temperature C)nonspontaneous at low temperature and spontaneous at high temperature D)nonspontaneous at all temperatures E)not enough information given to draw a conclusion is ________.

A)spontaneous at all temperatures
B)spontaneous at low temperature and nonspontaneous at high temperature
C)nonspontaneous at low temperature and spontaneous at high temperature
D)nonspontaneous at all temperatures
E)not enough information given to draw a conclusion
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25
For an isothermal process,the entropy change of the surroundings is given by the equation:

A)ΔS = qsys T
B)ΔS = -qsys T
C)ΔS = q lnT
D)ΔS = -q lnT
E)ΔS = -qsys / T
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26
ΔS is positive for the reaction ________.

A)Pb(NO3)2 (aq)+ 2KI(aq)→ PbI2 (s)+ 2KNO3 (aq)
B)2H2O (g)→ 2H2 (g)+ O2 (g)
C)H2O (g)→ H2O (s)
D)NO (g)+ O2 (g)→ NO2 (g)
E)Ag+ (aq)+ Cl- (aq)→ AgCl (s)
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27
Which one of the following statements is true about the equilibrium constant for a reaction if ΔG° for the reaction is negative?

A)K = 0
B)K = 1
C)K > 1
D)K < 1
E)More information is needed.
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28
Which reaction produces a decrease in the entropy of the system?

A)CaCO3 (s)→ CaO (s)+ CO2 (g)
B)2C (s)+ O2 (g)→ 2CO (g)
C)CO2 (s)→ CO2 (g)
D)2H2 (g)+ O2 (g)→ 2H2O (l)
E)H2O (l)→ H2O (g)
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29
Which reaction produces an increase in the entropy of the system?

A)Ag+ (aq)+ Cl- (aq)→ AgCl (s)
B)CO2 (s)→ CO2 (g)
C)H2 (g)+ Cl2 (g)→ 2 HCl (g)
D)N2 (g)+ 3 H2 (g)→ 2 NH3 (g)
E)H2O (l)→ H2O (s)
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30
With thermodynamics,one cannot determine ________.

A)the speed of a reaction
B)the direction of a spontaneous reaction
C)the extent of a reaction
D)the value of the equilibrium constant
E)the temperature at which a reaction will be spontaneous
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31
A reaction that is not spontaneous at low temperature can become spontaneous at high temperature if <strong>A reaction that is not spontaneous at low temperature can become spontaneous at high temperature if   is ________ and   is ________.</strong> A)+, + B)-, - C)+, - D)-, + E)+, 0 is ________ and <strong>A reaction that is not spontaneous at low temperature can become spontaneous at high temperature if   is ________ and   is ________.</strong> A)+, + B)-, - C)+, - D)-, + E)+, 0 is ________.

A)+, +
B)-, -
C)+, -
D)-, +
E)+, 0
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32
The equilibrium position corresponds to which letter on the graph of G vs.f (course of reaction)below? <strong>The equilibrium position corresponds to which letter on the graph of G vs.f (course of reaction)below?  </strong> A)A B)B C)C D)D E)E

A)A
B)B
C)C
D)D
E)E
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33
A decrease in the entropy of the system is observed for the reaction ________.

A)4 NH3 (g)+ 5 O2 (g)→ 4 NO (g)+ 6 H2O (g)
B)2 HgO (s)→ 2 Hg (l)+ O2 (g)
C)UF6 (s)→ U (s)+ 3F2 (g)
D)K (s)+ 1/2 I2 (g)→ KI (s)
E)H2O (s)→ H2O (g)
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34
The value of ΔS° for the catalytic hydrogenation of ethene to ethane, C2H4 (g)+ H2(g)→ C2H6 (g)
Is ________ J/K ∙ mol.

A)-101.9
B)-120.5
C)-232.5
D)+112.0
E)+101.9
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35
The combustion of acetylene in the presence of excess oxygen yields carbon dioxide and water: 2C2H2 (g)+ 5O2 (g)→ 4CO2 (g)+ 2H2O (l)
The value of ΔS° for this reaction is ________ J/K ∙ mol.

A)+689.3
B)+122.3
C)+432.4
D)-122.3
E)-432.4
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36
For the reaction 2 C4H10 (g)+ 13 O2 (g)→ 8 CO2 (g)+ 10 H2O (g)
ΔH° is -125 kJ/mol and ΔS° is +253 J/K ∙ mol.This reaction is ________.

A)spontaneous at all temperatures
B)spontaneous only at high temperature
C)spontaneous only at low temperature
D)nonspontaneous at all temperatures
E)unable to determine without more information
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37
The value of ΔS° for the reaction 2C (s,diamond)+ O2 (g)→ 2CO (g)
Is ________ J/K ∙ mol.

A)-185.9
B)+185.9
C)-9.5
D)+9.5
E)-195.7
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38
Which of the following reactions would have a negative ΔS?

A)NH4Cl (s)→ NH3 (g)+ HCl (g)
B)PbCl2 (s)→ Pb2+ (aq)+ 2Cl- (aq)
C)2C (s)+ O2 (g)→ 2CO2 (g)
D)2SO2 (g)+ O2 (g)→ 2SO3 (g)
E)H2O (l)→ H2O (g)
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39
For the reaction C2H6 (g)→ C2H4 (g)+ H2 (g)
ΔH° is +137 kJ/mol and ΔS° is +120 J/K ∙ mol.This reaction is ________.

A)spontaneous at all temperatures
B)spontaneous only at high temperature
C)spontaneous only at low temperature
D)nonspontaneous at all temperatures
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40
The value of ΔS° for the catalytic hydrogenation of acetylene to ethene, C2H2 (g)+ H2 (g)→ C2H4 (g)
Is ________ J/K∙ mol.

A)+18.6
B)+550.8
C)+112.0
D)-112.0
E)-18.6
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41
The value of ΔH° for the decomposition of gaseous sulfur trioxide to its component elements,
2SO3 (g)→ 2S (s,rhombic)+ 3O2 (g)
Is ________ kJ/mol.

A)+790.4
B)-790.4
C)+395.2
D)-395.2
E)+105.1
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42
The value of ΔH° for the oxidation of solid elemental sulfur to gaseous sulfur trioxide,
2S (s,rhombic)+ 3O2( g)→ 2SO3 (g)
Is ________ kJ/mol.

A)+790.4
B)-790.4
C)+395.2
D)-395.2
E)+105.1
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43
The combustion of ethane in the presence of excess oxygen yields carbon dioxide and water: 2C2H6 (g)+ 7O2 (g)→ 4CO2 (g)+ 6H2O (l)
The value of ΔS° for this reaction is ________ J/K ∙ mol.

A)+718.0
B)-620.1
C)-718.0
D)-151.0
E)+151.0
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44
The value of ΔS° for the decomposition of calcium chloride into its constituent elements, CaCl2 (s)→ Ca (s)+ Cl2 (g)
Is ________ J/K ∙ mol.

A)-104.6
B)+104.6
C)+369.0
D)-159.8
E)+159.8
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45
The value of ΔS° for the catalytic hydrogenation of acetylene to ethane, C2H2 (g)+ 2H2 (g)→ C2H6 (g)
Is ________ J/K ∙ mol.

A)-76.0
B)+440.9
C)-232.5
D)+232.5
E)+28.7
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46
The value of ΔS° for the formation of calcium chloride from its constituent elements, Ca (s)+ Cl2 (g)→ CaCl2 (s)
Is ________ J/K ∙ mol.

A)-104.6
B)+104.6
C)+369.0
D)-159.8
E)+159.8
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47
The value of ΔS° for the formation of phosphorous trichloride from its constituent elements, P2 (g)+ 3Cl2 (g)→ 2PCl3 (g)
Is ________ J/K ∙ mol.

A)-311.7
B)+311.7
C)-263.6
D)+129.4
E)-129.4
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48
The value of ΔS° for the formation of POCl3 from its constituent elements, P2 (g)+ O2 (g)+ 3Cl2 (g)→ 2POCl3 (g)
Is ________ J/K ∙ mol.

A)-442.0
B)+771.0
C)-321.0
D)-771.0
E)+321.0
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49
The combustion of hydrogen in the presence of excess oxygen yields liquid water: What is the value of ΔS° in J/K ∙ mol.for this reaction?

A)-405.5
B)+405.5
C)-265.7
D)-326.3
E)+265.7
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50
The combustion of ethene in the presence of excess oxygen yields carbon dioxide and water: C2H4 (g)+ 3O2 (g)→ 2CO2 (g)+ 2H2O (l)
The value of ΔS° for this reaction is ________ J/K ∙ mol.

A)-267.4
B)-140.9
C)-347.6
D)+347.6
E)+140.9
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51
The value of ΔS° for the decomposition of gaseous sulfur trioxide to solid elemental sulfur and gaseous oxygen,
2SO3 (g)→ 2S (s,rhombic)+ 3O2 (g)
Is ________ J/K ∙ mol.

A)+19.3
B)-19.3
C)+493.1
D)+166.4
E)-493.1
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52
The value of ΔH° for the decomposition of gaseous sulfur dioxide to solid elemental sulfur and gaseous oxygen, SO2 (g)→ S (s,rhombic)+ O2 (g)
Is ________ kJ/mol.

A)0.0
B)+135.0
C)-135.90
D)-269.9
E)+269.9
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53
The value of ΔS° for the oxidation of carbon to carbon monoxide,
2C (s,graphite)+ O2 (g)→ 2CO (g)
Is ________ J/K ∙ mol.Carbon monoxide is produced in the combustion of carbon with limited oxygen.

A)-12.8
B)+408.6
C)-408.6
D)+179.4
E)+395.8
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54
The value of ΔH° for the oxidation of solid elemental sulfur to gaseous sulfur dioxide,
S (s,rhombic)+ O2 (g)→ SO2 (g)
Is ________ kJ/mol.

A)+269.9
B)-269.9
C)+0.00
D)-11.6
E)+11.6
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55
The value of ΔS° for the decomposition of gaseous sulfur dioxide to solid elemental sulfur and gaseous oxygen,
SO2 (g)→ S (s,rhombic)+ O2 (g)
Is ________ J/K ∙ mol.

A)+485.4
B)+248.5
C)-11.6
D)-248.5
E)+11.6
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56
The value of ΔS° for the decomposition of POCl3 into its constituent elements, 2POCl3 (g)→ P2 (g)+ O2 (g)+ 3Cl2 (g)
Is ________ J/K ∙ mol.

A)+771.0
B)+442.0
C)-321.0
D)-771.0
E)+321.0
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57
The value of ΔS° for the decomposition of phosphorous trichloride into its constituent elements, 2PCl3 (g)→ P2 (g)+ 3Cl2( g)
Is ________ J/K ∙ mol.

A)-311.7
B)+311.7
C)+263.6
D)+129.4
E)-129.4
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58
The value of ΔS° for the oxidation of solid elemental sulfur to gaseous sulfur trioxide,
2S (s,rhombic)+ 3O2(g)→ 2SO3 (g)
Is ________ J/K mol.

A)+19.3
B)-19.3
C)+493.1
D)-166.4
E)-493.1
Unlock Deck
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59
The value of ΔS° for the oxidation of solid elemental sulfur to gaseous sulfur dioxide,
S (s,rhombic)+ O2(g)→ SO2(g)
Is ________ J/K ∙ mol.

A)+485.4
B)+248.5
C)-11.6
D)-248.5
E)+11.6
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60
The value of ΔS° for the oxidation of carbon to carbon dioxide,
C (s,graphite)+ O2 (g)→ CO2(g)
Is ________ J/K ∙ mol.The combustion of carbon,as in charcoal briquettes,in the presence of abundant oxygen produces carbon dioxide.

A)+424.3
B)+205.0
C)-205.0
D)-2.9
E)+2.9
Unlock Deck
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Unlock Deck
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61
The value of ΔG° at 25 °C for the decomposition of gaseous sulfur trioxide to solid elemental sulfur and gaseous oxygen, 2SO3 (g)→ 2S (s,rhombic)+ 3O2 (g)
Is ________ kJ/mol.

A)+740.8
B)-370.4
C)+370.4
D)-740.8
E)+185.2
Unlock Deck
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Unlock Deck
k this deck
62
The value of ΔH° for the decomposition of POCl3 into its constituent elements, 2POCl3 (g)→ P2 (g)+ O2 (g)+ 3Cl2 (g)
Is ________ kJ/mol.

A)-1228.7
B)+1228.7
C)-940.1
D)+940.1
E)0.00
Unlock Deck
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Unlock Deck
k this deck
63
The value of ΔG° at 25 °C for the formation of POCl3 from its constituent elements, P2 (g)+ O2 (g)+ 3Cl2 (g)→ 2POCl3 (g)
Is ________ kJ/mol.

A)-1108.7
B)+1108.7
C)-606.2
D)+606.2
E)-1,005
Unlock Deck
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Unlock Deck
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64
The value of ΔG° at 25 °C for the formation of phosphorous trichloride from its constituent elements, P2 (g)+ 3Cl2 (g)→ 2PCl3 (g)
Is ________ kJ/mol.

A)-539.2
B)+539.2
C)-642.9
D)+642.9
E)-373.3
Unlock Deck
Unlock for access to all 125 flashcards in this deck.
Unlock Deck
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65
The value of ΔH° for the decomposition of phosphorous trichloride into its constituent elements, 2PCl3 (g)→ P2 (g)+ 3Cl2 (g)
Is ________ kJ/mol.

A)+576.2
B)-288.1
C)+720.5
D)+288.1
E)-720.5
Unlock Deck
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66
Given the thermodynamic data in the table below,calculate the equilibrium constant (at 298 K)for the reaction: 2 SO2 (g)+ O2 (g) <strong>Given the thermodynamic data in the table below,calculate the equilibrium constant (at 298 K)for the reaction: 2 SO<sub>2</sub> (g)+ O<sub>2</sub> (g)   2 SO<sub>3</sub> (g)  </strong> A)2.40 × 10<sup>24</sup> B)1.06 C)1.95 D)3.82 × 10<sup>23</sup> E)More data are needed. 2 SO3 (g) <strong>Given the thermodynamic data in the table below,calculate the equilibrium constant (at 298 K)for the reaction: 2 SO<sub>2</sub> (g)+ O<sub>2</sub> (g)   2 SO<sub>3</sub> (g)  </strong> A)2.40 × 10<sup>24</sup> B)1.06 C)1.95 D)3.82 × 10<sup>23</sup> E)More data are needed.

A)2.40 × 1024
B)1.06
C)1.95
D)3.82 × 1023
E)More data are needed.
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Unlock Deck
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67
The value of ΔG° at 25 °C for the decomposition of POCl3 into its constituent elements, 2POCl3 (g)→ P2 (g)+ O2 (g)+ 3Cl2 (g)
Is ________ kJ/mol.

A)-1108.7
B)+1108.7
C)-606.2
D)+606.2
E)-1,005
Unlock Deck
Unlock for access to all 125 flashcards in this deck.
Unlock Deck
k this deck
68
The value of ΔG° at 25 °C for the decomposition of calcium chloride into its constituent elements, CaCl2 (s)→ Ca (s)+ Cl2 (g)
Is ________ kJ/mol.

A)-795.8
B)+795.8
C)+763.7
D)+748.1
E)-748.1
Unlock Deck
Unlock for access to all 125 flashcards in this deck.
Unlock Deck
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69
The value of ΔH° for the formation of phosphorous trichloride from its constituent elements, P2 (g)+ 3Cl2 (g)→ 2PCl3 (g)
Is ________ kJ/mol

A)-288.1
B)+432.4
C)-720.5
D)+720.5
E)-432.4
Unlock Deck
Unlock for access to all 125 flashcards in this deck.
Unlock Deck
k this deck
70
The value of ΔG° at 25 °C for the decomposition of gaseous sulfur dioxide to solid elemental sulfur and gaseous oxygen, SO2 (g)→ S (s,rhombic)+ O2 (g)
Is ________ kJ/mol.

A)+395.2
B)+269.9
C)-269.9
D)+300.4
E)-300.4
Unlock Deck
Unlock for access to all 125 flashcards in this deck.
Unlock Deck
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71
The value of ΔH° for the decomposition of calcium chloride into its constituent elements, CaCl2 (s)→ Ca (s)+ Cl2 (g)
Is ________ kJ/mol.

A)0.00
B)-397.9
C)+397.9
D)-795.8
E)+795.8
Unlock Deck
Unlock for access to all 125 flashcards in this deck.
Unlock Deck
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72
The value of ΔG° at 25 °C for the formation of calcium chloride from its constituent elements, Ca (s)+ Cl2 (g)→ CaCl2 (s)
Is ________ kJ/mol.

A)-795.8
B)+795.8
C)+763.7
D)+748.1
E)-748.1
Unlock Deck
Unlock for access to all 125 flashcards in this deck.
Unlock Deck
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73
The value of ΔG° at 373 K for the oxidation of solid elemental sulfur to gaseous sulfur dioxide is ________ kJ/mol.At 298 K,ΔH° for this reaction is -269.9 kJ/mol,and ΔS° is +11.6 J/K.

A)-300.4
B)-274.2
C)-4,597
D)+300.4
E)+4,597
Unlock Deck
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Unlock Deck
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74
The value of ΔG° at 25 °C for the oxidation of solid elemental sulfur to gaseous sulfur trioxide, 2S (s,rhombic)+ 3O2 (g)→ 2SO3 (g)
Is ________ kJ/mol.

A)+740.8
B)-370.4
C)+370.4
D)-740.8
E)+185.2
Unlock Deck
Unlock for access to all 125 flashcards in this deck.
Unlock Deck
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75
The value of ΔG° at 25 °C for the oxidation of solid elemental sulfur to gaseous sulfur dioxide, S (s,rhombic)+ O2(g)→ SO2 (g)
Is ________ kJ/mol.

A)+395.2
B)+269.9
C)-269.9
D)+300.4
E)-300.4
Unlock Deck
Unlock for access to all 125 flashcards in this deck.
Unlock Deck
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76
The value of ΔG° at 25 °C for the decomposition of phosphorous trichloride into its constituent elements, 2PCl3 (g)→ P2 (g)+ 3Cl2 (g)
Is ________ kJ/mol.

A)-539.2
B)+539.2
C)-642.9
D)+642.9
E)-373.3
Unlock Deck
Unlock for access to all 125 flashcards in this deck.
Unlock Deck
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77
The value of ΔG° for a reaction conducted at 25 °C is 3.05 kJ/mol.The equilibrium constant for a reaction is ________ at this temperature.

A)0.292
B)-4.20
C)0.320
D)-1.13
E)More information is needed.
Unlock Deck
Unlock for access to all 125 flashcards in this deck.
Unlock Deck
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78
The value of ΔH° for the formation of calcium chloride from its constituent elements, Ca (s)+ Cl2 (g)→ CaCl2 (s)
Is ________ kJ/mol.

A)0.00
B)-397.9
C)+397.9
D)-795.8
E)+795.8
Unlock Deck
Unlock for access to all 125 flashcards in this deck.
Unlock Deck
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79
The value of ΔG° at 25 °C for the following reaction: C2H4 (g)+ H2 (g)→ C2H6 (g)
Is ________ kJ/mol.At 298 K,ΔH° for this reaction is -137.5 kJ/mol,and ΔS° is +120.5 J/K.

A)-35800
B)-173.4
C)35800
D)-101.7
E)-274.2
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Unlock Deck
k this deck
80
The value of ΔH° for the formation of POCl3 from its constituent elements, P2 (g)+ O2 (g)+ 3Cl2 (g)→ 2POCl3 (g)
Is ________ kJ/mol.

A)-1228.7
B)-397.7
C)-686.5
D)+1228.7
E)+686.5
Unlock Deck
Unlock for access to all 125 flashcards in this deck.
Unlock Deck
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Unlock Deck
Unlock for access to all 125 flashcards in this deck.