Deck 2: Molecules

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Question
Use the expression for the Coulomb potential energy to calculate the energy for formation of 1 mole of sodium chloride ion-pairs,that is, the energy change for the following reaction:
Na+(g)+Cl-(g) \rightarrow Na+Cl-(g)
Use r12 = 283 pm.
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Question
Because of the octet rule,the gaseous O2- ion is stable.
Question
All the following elements exist as diatomic gases at room temperature and atmospheric pressure except

A) H.
B) Ar.
C) N.
D) Cl.
E) O.
Question
An element, E,Has the electronic configuration [Ne] 3s23p1.Write the formula of its compound with sulfate.
Question
Which of the following has the highest lattice energy?

A) NaCl
B) KI
C) MgO
D) BaO
E) CaO
Question
For the ground-state ion I-1, what type of orbital do the electrons with highest energy reside in?

A) 4d
B) 6s
C) 5p
D) 5d
E) 5s
Question
Write the formula of magnesium phosphide.
Question
Which of the following has the highest melting point?

A) KF
B) KI
C) RbF
D) KBr
E) KCl
Question
If 346 kJ.mol-1 is released in the reaction Na(g)+ Cl(g) \rightarrow Na+Cl-(g), is the energy change for the reaction Na+Cl-(g) \rightarrow NaCl(s) endothermic or exothermic?
Question
For the ground-state ion Pb2+, what type of orbital do the electrons with highest energy reside in?

A) 6p
B) 5p
C) 4f
D) 6s
E) 5d
Question
Which of the following has the lowest lattice energy?

A) KCl
B) LiCl
C) KBr
D) NaCl
E) KI
Question
Use the expression for the Coulomb potential energy to calculate the energy for formation of 1 mole of rubidium chloride ion-pairs, that is,the energy change for the following reaction:
Rb+(g)+Cl-(g) \rightarrow Rb+Cl-(g) Use r12 = 330 pm.
Question
How many lone pairs of electrons are found in the Lewis structure of the interhalogen compound ICl3?

A) 10
B) 4
C) 8
D) 6
E) 7
Question
Which of the following metal ions has the ground-state electron configuration [Ar]3d6?

A) Ni3+
B) Fe2+
C) Mn2+
D) Cu+
E) Ca2+
Question
For the ground-state ion Bi3+, what type of orbital do the electrons with highest energy reside in?

A) 5d
B) 6s
C) 4f
D) 5p
E) 6p
Question
For the ground-state ion Sn4+, what type of orbital do the electrons with highest energy reside in?

A) 4p
B) 5p
C) 4f
D) 4d
E) 5s
Question
The Madelung constant is different for all crystals.
Question
Metals rarely lose electrons in chemical reactions because

A) their electron affinities are too high.
B) their ionic radii become too small.
C) their ionization energies are too small.
D) their size is too small.
E) their ionization energies are too high.
Question
If 491kJ.mol-1 is released in the reaction Na+(g)+Cl-(g) \rarr Na+Cl-(g), what is the energy change for the reaction Na(g)+ Cl(g) \rarr Na+Cl-(g)? (Hint: See the discussion in the text and apply Hess's Law.)
Question
Predict the electronic configuration in the oxide ion in CaO.

A) [He]2s22p6 or [Ne]
B) [He]2s22p5
C) [He]2s22p63s2
D) [Ne]3s13p3
E) [Ne]3s23p3
Question
How many lone pairs of electrons are found in the Lewis structure of hydrazine, H2NNH2?

A) 8
B) 4
C) 1
D) 0
E) 2
Question
For dinitrogen monoxide, the arrangement of the atoms is N-N-O.In the Lewis structure with a single bond between NN and a triple bond between NO,
The formal charges on N,N,And O,Respectively,Are

A) -1, +1, 0.
B) 0, 0, 0.
C) 0, +1, -1.
D) 0, -1, +1.
E) -2, +1, +1.
Question
Which of the following species are radicals?

A) CH2O
B) HCN
C) HclO
D) ClONO2
E) ClO
Question
Consider the following equilibrium:
S2O42-(aq) \Leftrightarrow 2SO2-(aq)
K ~ 10-9Write a Lewis structure for each species.
Question
Which of the following do not have resonance structures?

A) CH3CONH-
B) CH2COCH3-
C) H2CO
D) All have resonance structures.
Question
How many electrons are in the expanded valence in XeO4?
Question
In the most plausible Lewis structure of XeOF2, there are

A) 2 single bonds, 1 double bond, and 1 lone pair of electrons around Xe.
B) 3 single bonds and 1 lone pair of electrons around Xe.
C) 2 single bonds, 1 double bond, and 3 lone pairs of electrons around Xe.
D) 2 single bonds, 1 double bond, and 2 lone pairs of electrons around Xe.
E) 3 single bonds and 2 lone pairs of electrons around Xe.
Question
Draw the "best" Lewis structures of hydrogen azide,HN1N2N3, and the azide ion,N1N2N3-S1S1P.The subscripts are used for identification.For each,match the following bond lengths to the correct N-N bond.The bond lengths can be used more than once.
NN bond  Bond length, pm  hydrogen azide N1N2113 N2N3116 azide ion N1N2124 N2N3\begin{array}{lll}&\mathrm{N}-\mathrm{N} \text { bond }&\text { Bond length, pm }\\\text { hydrogen azide } & \mathrm{N}_{1}-\mathrm{N}_{2} & 113 \\& \mathrm{~N}_{2}-\mathrm{N}_{3} & 116 \\\text { azide ion } & \mathrm{N}_{1}-\mathrm{N}_{2} & 124 \\& \mathrm{~N}_{2}-\mathrm{N}_{3} &\end{array}
Question
Write three Lewis structures for the cyanate ion, NCO-,Where the arrangement of atoms is N-C-O.In the most plausible structure,

A) there is a triple bond between N and C.
B) there are two double bonds.
C) there is a triple bond between C and O.
D) the formal charge on O is +1.
E) the formal charge on N is -1.
Question
Draw the Lewis structure of the formate ion and indicate whether resonance forms are possible.
Question
In the "best" Lewis structure of XeO4,there are two double bonds and the formal charge on Xe is zero.
Question
Why are the N-O bond lengths in NO3- the same?
Question
Draw the Lewis structure of xenon difluoride and give the number of lone pairs electrons around the central atom.
Question
How many lone pairs of electrons are found in the Lewis structure of urea, (NH2)2CO?

A) 2
B) 3
C) 6
D) 4
E) 8
Question
Which of the following species are radicals?

A) CO2
B) HNO3
C) NO2
D) NO-
E) HNO3
Question
How many electrons are in the expanded valence in XeOF2?

A) 14
B) 12
C) 8
D) 10
E) 6
Question
How many electrons are in the expanded valence in H2SO4?

A) 12
B) 14
C) 8
D) 6
E) 10
Question
Predict the N-O bond lengths in NO2- given the N-O and N=O bond lengths of 140 and 120 pm,respectively.
Question
For dinitrogen monoxide, the arrangement of the atoms is N-N-O.In the Lewis structure with a double bond between NN and NO,The formal charges on N,N,And O,Respectively,Are

A) 0, -1, +1.
B) -1, +1, 0.
C) 0, +1, -1.
D) 0, 0, 0.
E) -2, +1, +1.
Question
How many electrons are in the expanded valence in I3-?

A) 12
B) 6
C) 10
D) 14
E) 8
Question
Which of the following species has bonds with the most ionic character?

A) CO2
B) NO2
C) SnO2
D) P4O10
E) PCl3
Question
Which of the compounds below has bonds with the least covalent character?

A) AgI
B) AgCl
C) AgF
D) AlCl3
E) BeCl2
Question
Write all possible Lewis structures of sulfur dioxide. Which structure is most feasible?
Question
Estimate the CN bond length in urea, NH2CONH2.Given: covalent radii (pm)Of C-,77; C=,67; N-,75; N=,60;O-,74; O=,60; H,37.

A) 71 pm
B) 127 pm
C) 76 pm
D) 152 pm
E) 142 pm
Question
Which of the following compounds is the least stable?

A) CH4
B) SnH4
C) SiH4
D) GeH4
E) PbH4
Question
Which of the following species has bonds with the most ionic character?

A) SiO2
B) PCl3
C) P4O10
D) CO2
E) NO2
Question
Which of the following statements is true?

A) The electronegativity of an atom is defined as electron affinity of the atom.
B) The electronegativity of an atom depends only on the value of the ionization energy of the atom.
C) Atoms with high ionization energies and high electron affinities have low electronegativities.
D) Atoms with low ionization energies and low electron affinities have low electronegativities.
E) Atoms with low ionization energies and low electron affinities have high electronegativities.
Question
Use the bond enthalpies given to estimate the heat released when 1-bromobutene, CH3CH2CH=CH2,
Reacts with bromine to give CH3CH2CHBrCH2Br.
Bond enthalpies (kJ.mol-1): C-H,412; C-C,348; C=C,612; C-Br,276; Br-Br,193.

A) 181 kJ.mol-1
B) 317 kJ.mo-1
C) 288 kJ.mol-1
D) 95 kJ.mol-1
E) 507 kJ.mol-1
Question
If the following all crystallize in the same type of structure, which has the highest lattice energy?

A) LiCl
B) KF
C) KBr
D) KCl
E) LiF
Question
If the following all crystallize in the same type of structure, which has the lowest lattice energy?

A) CaO
B) BaS
C) SrO
D) SrS
E) BaO
Question
If the following all crystallize in the same type of structure, which has the highest lattice energy?

A) NaCl
B) NaF
C) KF
D) NaBr
E) NaI
Question
Use the bond enthalpies given to estimate the heat released when ethene, CH2=CH2,Reacts with HBr to give CH3CH2Br.
Bond enthalpies (kJ.mol-1 ): C-H,412; C-C,348; C=C,612; C-Br,276; Br-Br,193; H-Br,366.

A) 1036 kJ.mol-1
B) 200 kJ.mol-1
C) 470 kJ.mol-1
D) 424 kJ.mol-1
E) 58 kJ.mol-1
Question
Estimate the CO bond length in acetone, CH3COCH3.Given: covalent radii (pm)OfC-,77; C=,67; O-,74;O=,60; H,37.

A) 75.5 pm
B) 127 pm
C) 63.5 pm
D) 151 pm
E) 137 pm
Question
Which of the following statements is true?

A) Atoms with high ionization energies and high electron affinities are highly electronegative.
B) Atoms with high ionization energies and high electron affinities have low electronegativities.
C) The electronegativity of an atom depends only on the value of the ionization energy of the atom.
D) Atoms with low ionization energies and low electron affinities have high electronegativities.
E) The electronegativity of an atom is defined as half the electron affinity of the atom.
Question
Use the bond enthalpies given to estimate the heat released when 2-methyl-1-propene, (CH3)2C=CH2,
Reacts with HBr to give (CH3)2CBrCH3.Bond enthalpies ( kJ.mol-1 ):C-H,412; C-C,348;C=C,612; C-Br,276; H-Br,366.

A) 58 kJ.mol-1
B) 507 kJ.mol-1
C) 317 kJ.mol-1
D) 288 kJ.mol-1
E) 181 kJ.mol-1
Question
Which of the compounds below has bonds with the most covalent character?

A) CaO
B) Li2O
C) MgO
D) MgS
E) CaS
Question
Which of the following compounds contains the strongest bonds to hydrogen?

A) SiH4
B) CH4
C) HF
D) H2S
E) H2O
Question
Use the bond enthalpies given to estimate the heat released when ethene, CH2=CH2, Reacts with hydrogen to give CH3CH3.Bond enthalpies ( kJ.mol-1 ): C-H,412; C-C,348; C=C,612; C-Br,276; H-H,436.

A) 124 kJ.mol-1
B) 342 kJ.mol-1
C) 288 kJ.mol-1
D) 148 kJ.mol-1
E) 560 kJ.mol-1
Question
Which of the compounds below has bonds with the most covalent character?

A) NaCl
B) LiCl
C) CaCl2
D) BeCl2
E) MgCl2
Question
Which of the following compounds contains the weakest bonds to hydrogen?

A) CH4
B) H2O
C) SiH4
D) HF
E) H2S
Question
There are three resonance structures of the sulfate ion.A resonance structure can be written where the formal charge on sulfur is 0.
Question
The electronegativity of an element can be expressed as ½(I + Ea) where I is the ionization energy and Ea is the electron affinity.
Question
Which of the following is a radical?

A) BrO
B) CH3+
C) CH3-
D) BF4-
Question
How many resonance structures can be drawn for N2O?

A) 0
B) 3
C) 2
D) 1
Question
If the following all crystallize in the same type of structure, which has the lowest lattice energy?

A) LiCl
B) NaI
C) NaCl
D) KCl
E) KI
Question
Sulfur is more electronegative than oxygen.
Question
What is the electronic configuration of Ag?
Question
White phosphorus is composed of tetrahedral molecules of P4 in which each P atom is bonded to three others.In this molecule the formal charge on each P atom is ___.
Question
Of the following molecules, which has the strongest bonds?

A) H2O
B) H2Se
C) H2Te
D) H2S
Question
If dinitrogen oxide has a dipole moment,
what is the arrangement of atoms?
Question
An element E has the electronic configuration 1s22s22p4 .What is the formula of its compound with lithium?

A) LiE2
B) LiE
C) Li2E
D) Li4E
Question
How many lone pairs of electrons are there in the Lewis structure of Al2Cl6?

A) 24
B) 12
C) 4
D) 16
Question
The best Lewis structures of SO2 and O3 include expanded valence structures such as O=S=O and O=O=O.
Question
What is wrong with the following Lewis structure? OCOO - C \equiv O

A) The valence electron count
B) The positioning of the carbon atom
C) The distribution of valence electrons
D) The charge on the carbon atom
E) The dipole of the molecule
Question
White phosphorus is composed of tetrahedral molecules of P4 in which every P atom is connected to three other P atoms . In the Lewis structure of P4, There are

A) 3 bonding pairs and 4 lone pairs of electrons.
B) 6 bonding pairs and 2 lone pairs of electrons.
C) 5 bonding pairs and 4 lone pairs of electrons.
D) 6 bonding pairs and no lone pairs of electrons.
E) 6 bonding pairs and 4 lone pairs of electrons.
Question
What is the formal charge on the Xe atom in XeF4?

A) 0
B) -4
C) +2
D) +4
Question
Match each of the following compounds with its lattice energy.
Match each of the following compounds with its lattice energy.  <div style=padding-top: 35px>
Question
Which of the following has resonance structures?

A) XeOF2
B) N2H4
C) CH3CONH-
D) H2CO
Question
How many valence electrons are present in W4+?
Question
How many double bonds are present in the "best" resonance structure of the phosphate ion?

A) 2
B) 3
C) 1
D) 0
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Deck 2: Molecules
1
Use the expression for the Coulomb potential energy to calculate the energy for formation of 1 mole of sodium chloride ion-pairs,that is, the energy change for the following reaction:
Na+(g)+Cl-(g) \rightarrow Na+Cl-(g)
Use r12 = 283 pm.
-491 kJ.mol-1
2
Because of the octet rule,the gaseous O2- ion is stable.
False
3
All the following elements exist as diatomic gases at room temperature and atmospheric pressure except

A) H.
B) Ar.
C) N.
D) Cl.
E) O.
B
4
An element, E,Has the electronic configuration [Ne] 3s23p1.Write the formula of its compound with sulfate.
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5
Which of the following has the highest lattice energy?

A) NaCl
B) KI
C) MgO
D) BaO
E) CaO
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6
For the ground-state ion I-1, what type of orbital do the electrons with highest energy reside in?

A) 4d
B) 6s
C) 5p
D) 5d
E) 5s
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7
Write the formula of magnesium phosphide.
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8
Which of the following has the highest melting point?

A) KF
B) KI
C) RbF
D) KBr
E) KCl
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9
If 346 kJ.mol-1 is released in the reaction Na(g)+ Cl(g) \rightarrow Na+Cl-(g), is the energy change for the reaction Na+Cl-(g) \rightarrow NaCl(s) endothermic or exothermic?
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10
For the ground-state ion Pb2+, what type of orbital do the electrons with highest energy reside in?

A) 6p
B) 5p
C) 4f
D) 6s
E) 5d
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11
Which of the following has the lowest lattice energy?

A) KCl
B) LiCl
C) KBr
D) NaCl
E) KI
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12
Use the expression for the Coulomb potential energy to calculate the energy for formation of 1 mole of rubidium chloride ion-pairs, that is,the energy change for the following reaction:
Rb+(g)+Cl-(g) \rightarrow Rb+Cl-(g) Use r12 = 330 pm.
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13
How many lone pairs of electrons are found in the Lewis structure of the interhalogen compound ICl3?

A) 10
B) 4
C) 8
D) 6
E) 7
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14
Which of the following metal ions has the ground-state electron configuration [Ar]3d6?

A) Ni3+
B) Fe2+
C) Mn2+
D) Cu+
E) Ca2+
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15
For the ground-state ion Bi3+, what type of orbital do the electrons with highest energy reside in?

A) 5d
B) 6s
C) 4f
D) 5p
E) 6p
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16
For the ground-state ion Sn4+, what type of orbital do the electrons with highest energy reside in?

A) 4p
B) 5p
C) 4f
D) 4d
E) 5s
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17
The Madelung constant is different for all crystals.
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18
Metals rarely lose electrons in chemical reactions because

A) their electron affinities are too high.
B) their ionic radii become too small.
C) their ionization energies are too small.
D) their size is too small.
E) their ionization energies are too high.
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19
If 491kJ.mol-1 is released in the reaction Na+(g)+Cl-(g) \rarr Na+Cl-(g), what is the energy change for the reaction Na(g)+ Cl(g) \rarr Na+Cl-(g)? (Hint: See the discussion in the text and apply Hess's Law.)
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20
Predict the electronic configuration in the oxide ion in CaO.

A) [He]2s22p6 or [Ne]
B) [He]2s22p5
C) [He]2s22p63s2
D) [Ne]3s13p3
E) [Ne]3s23p3
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21
How many lone pairs of electrons are found in the Lewis structure of hydrazine, H2NNH2?

A) 8
B) 4
C) 1
D) 0
E) 2
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22
For dinitrogen monoxide, the arrangement of the atoms is N-N-O.In the Lewis structure with a single bond between NN and a triple bond between NO,
The formal charges on N,N,And O,Respectively,Are

A) -1, +1, 0.
B) 0, 0, 0.
C) 0, +1, -1.
D) 0, -1, +1.
E) -2, +1, +1.
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23
Which of the following species are radicals?

A) CH2O
B) HCN
C) HclO
D) ClONO2
E) ClO
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24
Consider the following equilibrium:
S2O42-(aq) \Leftrightarrow 2SO2-(aq)
K ~ 10-9Write a Lewis structure for each species.
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25
Which of the following do not have resonance structures?

A) CH3CONH-
B) CH2COCH3-
C) H2CO
D) All have resonance structures.
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26
How many electrons are in the expanded valence in XeO4?
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27
In the most plausible Lewis structure of XeOF2, there are

A) 2 single bonds, 1 double bond, and 1 lone pair of electrons around Xe.
B) 3 single bonds and 1 lone pair of electrons around Xe.
C) 2 single bonds, 1 double bond, and 3 lone pairs of electrons around Xe.
D) 2 single bonds, 1 double bond, and 2 lone pairs of electrons around Xe.
E) 3 single bonds and 2 lone pairs of electrons around Xe.
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28
Draw the "best" Lewis structures of hydrogen azide,HN1N2N3, and the azide ion,N1N2N3-S1S1P.The subscripts are used for identification.For each,match the following bond lengths to the correct N-N bond.The bond lengths can be used more than once.
NN bond  Bond length, pm  hydrogen azide N1N2113 N2N3116 azide ion N1N2124 N2N3\begin{array}{lll}&\mathrm{N}-\mathrm{N} \text { bond }&\text { Bond length, pm }\\\text { hydrogen azide } & \mathrm{N}_{1}-\mathrm{N}_{2} & 113 \\& \mathrm{~N}_{2}-\mathrm{N}_{3} & 116 \\\text { azide ion } & \mathrm{N}_{1}-\mathrm{N}_{2} & 124 \\& \mathrm{~N}_{2}-\mathrm{N}_{3} &\end{array}
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29
Write three Lewis structures for the cyanate ion, NCO-,Where the arrangement of atoms is N-C-O.In the most plausible structure,

A) there is a triple bond between N and C.
B) there are two double bonds.
C) there is a triple bond between C and O.
D) the formal charge on O is +1.
E) the formal charge on N is -1.
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30
Draw the Lewis structure of the formate ion and indicate whether resonance forms are possible.
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31
In the "best" Lewis structure of XeO4,there are two double bonds and the formal charge on Xe is zero.
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32
Why are the N-O bond lengths in NO3- the same?
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33
Draw the Lewis structure of xenon difluoride and give the number of lone pairs electrons around the central atom.
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34
How many lone pairs of electrons are found in the Lewis structure of urea, (NH2)2CO?

A) 2
B) 3
C) 6
D) 4
E) 8
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35
Which of the following species are radicals?

A) CO2
B) HNO3
C) NO2
D) NO-
E) HNO3
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36
How many electrons are in the expanded valence in XeOF2?

A) 14
B) 12
C) 8
D) 10
E) 6
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37
How many electrons are in the expanded valence in H2SO4?

A) 12
B) 14
C) 8
D) 6
E) 10
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38
Predict the N-O bond lengths in NO2- given the N-O and N=O bond lengths of 140 and 120 pm,respectively.
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39
For dinitrogen monoxide, the arrangement of the atoms is N-N-O.In the Lewis structure with a double bond between NN and NO,The formal charges on N,N,And O,Respectively,Are

A) 0, -1, +1.
B) -1, +1, 0.
C) 0, +1, -1.
D) 0, 0, 0.
E) -2, +1, +1.
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40
How many electrons are in the expanded valence in I3-?

A) 12
B) 6
C) 10
D) 14
E) 8
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41
Which of the following species has bonds with the most ionic character?

A) CO2
B) NO2
C) SnO2
D) P4O10
E) PCl3
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42
Which of the compounds below has bonds with the least covalent character?

A) AgI
B) AgCl
C) AgF
D) AlCl3
E) BeCl2
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43
Write all possible Lewis structures of sulfur dioxide. Which structure is most feasible?
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44
Estimate the CN bond length in urea, NH2CONH2.Given: covalent radii (pm)Of C-,77; C=,67; N-,75; N=,60;O-,74; O=,60; H,37.

A) 71 pm
B) 127 pm
C) 76 pm
D) 152 pm
E) 142 pm
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45
Which of the following compounds is the least stable?

A) CH4
B) SnH4
C) SiH4
D) GeH4
E) PbH4
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46
Which of the following species has bonds with the most ionic character?

A) SiO2
B) PCl3
C) P4O10
D) CO2
E) NO2
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47
Which of the following statements is true?

A) The electronegativity of an atom is defined as electron affinity of the atom.
B) The electronegativity of an atom depends only on the value of the ionization energy of the atom.
C) Atoms with high ionization energies and high electron affinities have low electronegativities.
D) Atoms with low ionization energies and low electron affinities have low electronegativities.
E) Atoms with low ionization energies and low electron affinities have high electronegativities.
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48
Use the bond enthalpies given to estimate the heat released when 1-bromobutene, CH3CH2CH=CH2,
Reacts with bromine to give CH3CH2CHBrCH2Br.
Bond enthalpies (kJ.mol-1): C-H,412; C-C,348; C=C,612; C-Br,276; Br-Br,193.

A) 181 kJ.mol-1
B) 317 kJ.mo-1
C) 288 kJ.mol-1
D) 95 kJ.mol-1
E) 507 kJ.mol-1
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49
If the following all crystallize in the same type of structure, which has the highest lattice energy?

A) LiCl
B) KF
C) KBr
D) KCl
E) LiF
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50
If the following all crystallize in the same type of structure, which has the lowest lattice energy?

A) CaO
B) BaS
C) SrO
D) SrS
E) BaO
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51
If the following all crystallize in the same type of structure, which has the highest lattice energy?

A) NaCl
B) NaF
C) KF
D) NaBr
E) NaI
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52
Use the bond enthalpies given to estimate the heat released when ethene, CH2=CH2,Reacts with HBr to give CH3CH2Br.
Bond enthalpies (kJ.mol-1 ): C-H,412; C-C,348; C=C,612; C-Br,276; Br-Br,193; H-Br,366.

A) 1036 kJ.mol-1
B) 200 kJ.mol-1
C) 470 kJ.mol-1
D) 424 kJ.mol-1
E) 58 kJ.mol-1
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53
Estimate the CO bond length in acetone, CH3COCH3.Given: covalent radii (pm)OfC-,77; C=,67; O-,74;O=,60; H,37.

A) 75.5 pm
B) 127 pm
C) 63.5 pm
D) 151 pm
E) 137 pm
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54
Which of the following statements is true?

A) Atoms with high ionization energies and high electron affinities are highly electronegative.
B) Atoms with high ionization energies and high electron affinities have low electronegativities.
C) The electronegativity of an atom depends only on the value of the ionization energy of the atom.
D) Atoms with low ionization energies and low electron affinities have high electronegativities.
E) The electronegativity of an atom is defined as half the electron affinity of the atom.
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55
Use the bond enthalpies given to estimate the heat released when 2-methyl-1-propene, (CH3)2C=CH2,
Reacts with HBr to give (CH3)2CBrCH3.Bond enthalpies ( kJ.mol-1 ):C-H,412; C-C,348;C=C,612; C-Br,276; H-Br,366.

A) 58 kJ.mol-1
B) 507 kJ.mol-1
C) 317 kJ.mol-1
D) 288 kJ.mol-1
E) 181 kJ.mol-1
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56
Which of the compounds below has bonds with the most covalent character?

A) CaO
B) Li2O
C) MgO
D) MgS
E) CaS
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57
Which of the following compounds contains the strongest bonds to hydrogen?

A) SiH4
B) CH4
C) HF
D) H2S
E) H2O
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58
Use the bond enthalpies given to estimate the heat released when ethene, CH2=CH2, Reacts with hydrogen to give CH3CH3.Bond enthalpies ( kJ.mol-1 ): C-H,412; C-C,348; C=C,612; C-Br,276; H-H,436.

A) 124 kJ.mol-1
B) 342 kJ.mol-1
C) 288 kJ.mol-1
D) 148 kJ.mol-1
E) 560 kJ.mol-1
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59
Which of the compounds below has bonds with the most covalent character?

A) NaCl
B) LiCl
C) CaCl2
D) BeCl2
E) MgCl2
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60
Which of the following compounds contains the weakest bonds to hydrogen?

A) CH4
B) H2O
C) SiH4
D) HF
E) H2S
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61
There are three resonance structures of the sulfate ion.A resonance structure can be written where the formal charge on sulfur is 0.
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62
The electronegativity of an element can be expressed as ½(I + Ea) where I is the ionization energy and Ea is the electron affinity.
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63
Which of the following is a radical?

A) BrO
B) CH3+
C) CH3-
D) BF4-
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64
How many resonance structures can be drawn for N2O?

A) 0
B) 3
C) 2
D) 1
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65
If the following all crystallize in the same type of structure, which has the lowest lattice energy?

A) LiCl
B) NaI
C) NaCl
D) KCl
E) KI
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66
Sulfur is more electronegative than oxygen.
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67
What is the electronic configuration of Ag?
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68
White phosphorus is composed of tetrahedral molecules of P4 in which each P atom is bonded to three others.In this molecule the formal charge on each P atom is ___.
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69
Of the following molecules, which has the strongest bonds?

A) H2O
B) H2Se
C) H2Te
D) H2S
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70
If dinitrogen oxide has a dipole moment,
what is the arrangement of atoms?
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71
An element E has the electronic configuration 1s22s22p4 .What is the formula of its compound with lithium?

A) LiE2
B) LiE
C) Li2E
D) Li4E
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72
How many lone pairs of electrons are there in the Lewis structure of Al2Cl6?

A) 24
B) 12
C) 4
D) 16
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73
The best Lewis structures of SO2 and O3 include expanded valence structures such as O=S=O and O=O=O.
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74
What is wrong with the following Lewis structure? OCOO - C \equiv O

A) The valence electron count
B) The positioning of the carbon atom
C) The distribution of valence electrons
D) The charge on the carbon atom
E) The dipole of the molecule
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75
White phosphorus is composed of tetrahedral molecules of P4 in which every P atom is connected to three other P atoms . In the Lewis structure of P4, There are

A) 3 bonding pairs and 4 lone pairs of electrons.
B) 6 bonding pairs and 2 lone pairs of electrons.
C) 5 bonding pairs and 4 lone pairs of electrons.
D) 6 bonding pairs and no lone pairs of electrons.
E) 6 bonding pairs and 4 lone pairs of electrons.
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76
What is the formal charge on the Xe atom in XeF4?

A) 0
B) -4
C) +2
D) +4
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77
Match each of the following compounds with its lattice energy.
Match each of the following compounds with its lattice energy.
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78
Which of the following has resonance structures?

A) XeOF2
B) N2H4
C) CH3CONH-
D) H2CO
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79
How many valence electrons are present in W4+?
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80
How many double bonds are present in the "best" resonance structure of the phosphate ion?

A) 2
B) 3
C) 1
D) 0
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