Deck 13: Bonding: General Concepts
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Deck 13: Bonding: General Concepts
1
Which of the following is nonpolar?
A) H2O
B) CO2
C) SF2
D) ICl3
E) NCl3
A) H2O
B) CO2
C) SF2
D) ICl3
E) NCl3
CO2
2
Which of the following shows these molecules in order from most polar to least polar?
A) CF2Cl2 > CF2H2 > CCl2H2 > CH4 = CCl4
B) CH4 > CF2Cl2 > CF2H2 > CCl4 > CCl2H2
C) CF2H2 > CCl2H2 > CF2Cl2 > CH4 = CCl4
D) CF2Cl2 > CF2H2 > CCl4 > CCl2H2 > CH4
E) CH4 > CF2H2 > CF2Cl2 > CCl4 > CCl2H2
A) CF2Cl2 > CF2H2 > CCl2H2 > CH4 = CCl4
B) CH4 > CF2Cl2 > CF2H2 > CCl4 > CCl2H2
C) CF2H2 > CCl2H2 > CF2Cl2 > CH4 = CCl4
D) CF2Cl2 > CF2H2 > CCl4 > CCl2H2 > CH4
E) CH4 > CF2H2 > CF2Cl2 > CCl4 > CCl2H2
CF2H2 > CCl2H2 > CF2Cl2 > CH4 = CCl4
3
Atoms having greatly differing electronegativities are expected to form
A) polar covalent bonds.
B) nonpolar covalent bonds.
C) no bonds.
D) ionic bonds.
E) covalent bonds.
A) polar covalent bonds.
B) nonpolar covalent bonds.
C) no bonds.
D) ionic bonds.
E) covalent bonds.
ionic bonds.
4
The electron pair in a C-F bond could be considered
A) an inadequate model because the bond is ionic.
B) closer to C because carbon has a lower electronegativity than fluorine.
C) closer to C because carbon has a larger radius and thus exerts greater control over the shared electron pair.
D) closer to F because fluorine has a higher electronegativity than carbon.
E) centrally located directly between the C and F.
A) an inadequate model because the bond is ionic.
B) closer to C because carbon has a lower electronegativity than fluorine.
C) closer to C because carbon has a larger radius and thus exerts greater control over the shared electron pair.
D) closer to F because fluorine has a higher electronegativity than carbon.
E) centrally located directly between the C and F.
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5
Which of the following bonds is the least polar?
A) H-N
B) H-C
C) H-O
D) H-F
E) All are the same.
A) H-N
B) H-C
C) H-O
D) H-F
E) All are the same.
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6
Which element listed below has the highest electronegativity?
A) K
B) Te
C) Br
D) I
E) Rb
A) K
B) Te
C) Br
D) I
E) Rb
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7
What of the following shows the bonds in order of decreasing polarity?
A) N-Cl, P-Cl, As-Cl
B) As-Cl, P-Cl, N-Cl
C) P-Cl, As-Cl, N-Cl
D) P-Cl, N-Cl, As-Cl
E) As-Cl, N-Cl, P-Cl
A) N-Cl, P-Cl, As-Cl
B) As-Cl, P-Cl, N-Cl
C) P-Cl, As-Cl, N-Cl
D) P-Cl, N-Cl, As-Cl
E) As-Cl, N-Cl, P-Cl
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8
Based on electronegativities, which of the following would you expect to be most ionic?
A) N2
B) CO2
C) CF4
D) CH4
E) CaF2
A) N2
B) CO2
C) CF4
D) CH4
E) CaF2
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9
Which of the following elements forms the most ionic bond with chlorine?
A) Ar
B) Ga
C) P
D) I
E) Cs
A) Ar
B) Ga
C) P
D) I
E) Cs
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10
In the gaseous phase, which of the following diatomic molecules would be the most polar?
A) NaCl
B) CsF
C) NaF
D) LiF
E) CsCl
A) NaCl
B) CsF
C) NaF
D) LiF
E) CsCl
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11
For the elements Rb, F, and O, the order of increasing electronegativity is
A) Rb < O < F.
B) Rb < F < O.
C) O < F < Rb.
D) F < Rb < O.
E) none of these.
A) Rb < O < F.
B) Rb < F < O.
C) O < F < Rb.
D) F < Rb < O.
E) none of these.
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12
Choose the compound with the most ionic bond.
A) LiF
B) RbBr
C) KBr
D) KF
E) NaBr
A) LiF
B) RbBr
C) KBr
D) KF
E) NaBr
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13
Which of the following bonds would be the most polar without being considered ionic?
A) C-O
B) Mg-O
C) O-O
D) Si-O
E) N-O
A) C-O
B) Mg-O
C) O-O
D) Si-O
E) N-O
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14
Which compound does not contain both polar covalent and ionic bonds?
A) Mg(CN)2
B) NH4ClO2
C) C2H5OH
D) NaOH
E) RbC2H3O2
A) Mg(CN)2
B) NH4ClO2
C) C2H5OH
D) NaOH
E) RbC2H3O2
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15
As a general pattern, electronegativity is inversely related to
A) atomic size
B) polarity of the atom.
C) the number of neutrons in the nucleus.
D) ionization energy.
E) two of these.
A) atomic size
B) polarity of the atom.
C) the number of neutrons in the nucleus.
D) ionization energy.
E) two of these.
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16
In which case is the bond polarity incorrect?
A) ( + Cl-Br -)
B) ( + Na-S -)
C) ( + H-Br -)
D) ( + Mg-H -)
E) ( + Si-S -)
A) ( + Cl-Br -)
B) ( + Na-S -)
C) ( + H-Br -)
D) ( + Mg-H -)
E) ( + Si-S -)
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17
Which of the following groups contains no ionic compounds?
A) KH, CaF2, NaNH2
B) KOH, CCl4, SF4
C) HCN, NO2, Ca(NO3)2
D) CH2O, H2S, NBr3
E) PCl5, LiBr, Cu(OH)2
A) KH, CaF2, NaNH2
B) KOH, CCl4, SF4
C) HCN, NO2, Ca(NO3)2
D) CH2O, H2S, NBr3
E) PCl5, LiBr, Cu(OH)2
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18
For the elements Cs, F, and Cl, the order of increasing electronegativity is
A) Cl < Cs < F.
B) Cs < Cl < F.
C) F < Cs < Cl.
D) F < Cl < Cs.
E) None of these
A) Cl < Cs < F.
B) Cs < Cl < F.
C) F < Cs < Cl.
D) F < Cl < Cs.
E) None of these
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19
Which of the following statements is incorrect?
A) A molecule with very polar bonds can be nonpolar.
B) Ionic bonding results from the transfer of electrons from one atom to another.
C) Dipole moments result from the unequal distribution of electrons in a molecule.
D) Linear molecules cannot have a net dipole moment.
E) The electrons in a polar bond are found nearer to the more electronegative element.
A) A molecule with very polar bonds can be nonpolar.
B) Ionic bonding results from the transfer of electrons from one atom to another.
C) Dipole moments result from the unequal distribution of electrons in a molecule.
D) Linear molecules cannot have a net dipole moment.
E) The electrons in a polar bond are found nearer to the more electronegative element.
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20
Which of the following bonds would be the least polar and yet still be considered polar covalent?
A) Mg-S
B) Ga-S
C) B-S
D) P-S
E) S-S
A) Mg-S
B) Ga-S
C) B-S
D) P-S
E) S-S
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21
Given the following information:
calculate the net change in energy for the reaction 2Li(s) + 2HCl(g) 2LiCl(s) + H2(g)
A) -179 kJ
B) 362 kJ
C) -70. kJ
D) -572 kJ
E) None of these

A) -179 kJ
B) 362 kJ
C) -70. kJ
D) -572 kJ
E) None of these
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22
Which of the following molecules does not have a dipole moment?
A) H2O
B) H2S
C) H2Xe
D) All of these have a dipole moment.
E) None of these has a dipole moment.
A) H2O
B) H2S
C) H2Xe
D) All of these have a dipole moment.
E) None of these has a dipole moment.
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23
Use the following electronegativity values to answer the question:
C 2.5
Cl 3.2
H 2.2
N 3.0
O 3.4
This molecule is the most polar.
A) CH3Cl
B) C2H6
C) CO2
D) CH3CHO
E) none of these
C 2.5
Cl 3.2
H 2.2
N 3.0
O 3.4
This molecule is the most polar.
A) CH3Cl
B) C2H6
C) CO2
D) CH3CHO
E) none of these
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24
Choose the statement that best describes the PbCl4 molecule in the gas phase.
A) The molecule is polar.
B) The bonds are nonpolar.
C) The molecule is polar with bond angles of about 109°.
D) The bond angles are all about 109°.
E) The molecule has a dipole moment.
A) The molecule is polar.
B) The bonds are nonpolar.
C) The molecule is polar with bond angles of about 109°.
D) The bond angles are all about 109°.
E) The molecule has a dipole moment.
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25
Which of the following molecules has a dipole moment?
A) SF4
B) CF4
C) XeF4
D) All of these have a dipole moment.
E) None of these has a dipole moment.
A) SF4
B) CF4
C) XeF4
D) All of these have a dipole moment.
E) None of these has a dipole moment.
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26
Which of the following ionic compounds has the largest lattice energy; that is, which has the lattice energy most favorable to a stable lattice?
A) LiF
B) LiI
C) CsF
D) MgO
E) CsI
A) LiF
B) LiI
C) CsF
D) MgO
E) CsI
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27
Which of the following molecules has a dipole moment?
A) SCl6
B) CO2
C) OF2
D) BH3
E) None of these has a dipole moment.
A) SCl6
B) CO2
C) OF2
D) BH3
E) None of these has a dipole moment.
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28
Which of the following has the smallest radius?
A) Se2-
B) Sr2+
C) Br+
D) Kr
E) Rb+
A) Se2-
B) Sr2+
C) Br+
D) Kr
E) Rb+
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29
In the reaction between magnesium and sulfur, the magnesium atoms
A) share electrons with sulfur.
B) become part of polyatomic ions.
C) become anions.
D) become cations.
A) share electrons with sulfur.
B) become part of polyatomic ions.
C) become anions.
D) become cations.
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30
Which of the following is polar?
A) NBr3
B) XeF4
C) SBr6
D) KrF2
E) BBr3
A) NBr3
B) XeF4
C) SBr6
D) KrF2
E) BBr3
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31
Which of the following molecules has a dipole moment?
A) PCl3
B) BCl3
C) Cl2
D) SiCl4
E) none of these
A) PCl3
B) BCl3
C) Cl2
D) SiCl4
E) none of these
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32
Which of the following molecules has a nonzero dipole moment?
A) CS2
B) SiF4
C) CH4
D) SO3
E) PBr3
A) CS2
B) SiF4
C) CH4
D) SO3
E) PBr3
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33
Calculate the lattice energy for LiF(s) given the following: 
A) -650. kJ/mol
B) -1047 kJ/mol
C)800. kJ/mol
D) 285 kJ/mol
E) none of these

A) -650. kJ/mol
B) -1047 kJ/mol
C)800. kJ/mol
D) 285 kJ/mol
E) none of these
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34
Which statement is correct?
A) H2O is linear.
B) The molecule ClO2 cannot be accurately described by a Lewis structure consistent with the octet rule.
C) The diatomic molecule Cl2 is an example of a polar molecule.
D) The bonds in LiF have a more covalent character than those in F2.
E) none of these
A) H2O is linear.
B) The molecule ClO2 cannot be accurately described by a Lewis structure consistent with the octet rule.
C) The diatomic molecule Cl2 is an example of a polar molecule.
D) The bonds in LiF have a more covalent character than those in F2.
E) none of these
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35
Which of the following has a zero dipole moment?
A) SO2
B) NO2
C) PF5
D) NH3
E) HCN
A) SO2
B) NO2
C) PF5
D) NH3
E) HCN
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36
Which of the following molecules has a zero dipole moment?
A) NCl3
B) CO2
C) SCl4
D) H2O
E) ICl3
A) NCl3
B) CO2
C) SCl4
D) H2O
E) ICl3
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37
The first electron affinity value for oxygen is _______ and the second electron affinity value is ________.
A) favorable (exothermic), favorable (exothermic)
B) More information is needed.
C) favorable (exothermic), unfavorable (endothermic)
D) unfavorable (endothermic), favorable (exothermic)
E) unfavorable (endothermic), unfavorable (endothermic)
A) favorable (exothermic), favorable (exothermic)
B) More information is needed.
C) favorable (exothermic), unfavorable (endothermic)
D) unfavorable (endothermic), favorable (exothermic)
E) unfavorable (endothermic), unfavorable (endothermic)
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38
Which of the following series is isoelectronic?
A) B, C, N, O
B) Sn, As, S, F
C) Na, K, Rb, Cs
D) S2-, Cl-, K+, Ca2+
E) F-, Cl-, K+, Rb+
A) B, C, N, O
B) Sn, As, S, F
C) Na, K, Rb, Cs
D) S2-, Cl-, K+, Ca2+
E) F-, Cl-, K+, Rb+
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39
Consider the following molecules.
I. BF3
II. CHBr3 (C is the central atom.)
III. Br2
IV. XeCl2
V.CO
VI. SF4
Select the molecule(s) that fit the given statement.
These molecules have a zero net dipole moment.
A) III, V
B) III, IV, V
C) I, III, IV
D) I, III, IV, VI
E) none of them
I. BF3
II. CHBr3 (C is the central atom.)
III. Br2
IV. XeCl2
V.CO
VI. SF4
Select the molecule(s) that fit the given statement.
These molecules have a zero net dipole moment.
A) III, V
B) III, IV, V
C) I, III, IV
D) I, III, IV, VI
E) none of them
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40
Which of the following has the largest radius?
A) Na+
B) Ne
C) O2-
D) Mg2+
E) F-
A) Na+
B) Ne
C) O2-
D) Mg2+
E) F-
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41
Estimate the bond energy of the N2 molecule.
for NH3 = -46.0 kJ/mol N-H bond energy = 391 kJ/mol
H-H bond energy = 432 kJ/mol
A) 1140 kJ/mol
B) 560 kJ/mol
C) 87 kJ/mol
D) 479 kJ/mol
E) 958 kJ/mol

H-H bond energy = 432 kJ/mol
A) 1140 kJ/mol
B) 560 kJ/mol
C) 87 kJ/mol
D) 479 kJ/mol
E) 958 kJ/mol
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42
Consider the compound crotonaldehyde, whose skeleton is 
How many electrons must be shown in the Lewis structure of this molecule?
A) 32
B) 28
C) 18
D) 24
E) 12

How many electrons must be shown in the Lewis structure of this molecule?
A) 32
B) 28
C) 18
D) 24
E) 12
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43
Choose the molecule with the strongest bond.
A) HBr
B) HCl
C) HF
D) HI
A) HBr
B) HCl
C) HF
D) HI
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44
In which of the following compounds does the bond between the central atom and fluorine have the greatest ionic character?
A) SF2
B) SeF2
C) OF2
D) SbF3
E) AsF3
A) SF2
B) SeF2
C) OF2
D) SbF3
E) AsF3
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45
Choose the molecule with the strongest bond.
A) HF
B) NH3
C) H2O
D) CH4
A) HF
B) NH3
C) H2O
D) CH4
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46
Choose the molecule with the strongest bond.
A) I2
B) F2
C) Br2
D) Cl2
A) I2
B) F2
C) Br2
D) Cl2
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47
Which of the following compounds contains only one unshared pair of valence electrons?
A) NaCl
B) NH3
C) BeF3
D) CH4
E) H2O
A) NaCl
B) NH3
C) BeF3
D) CH4
E) H2O
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48
Which of the following molecules contains a double bond?
A) CO2
B) H2O
C) NH3
D) all
E) none
A) CO2
B) H2O
C) NH3
D) all
E) none
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49
Which of the following molecules exhibits the greatest bond energy?
A) Cl2
B) Br2
C) F2
D) I2
E) all the same
A) Cl2
B) Br2
C) F2
D) I2
E) all the same
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50
Given the following information: N2 bond energy = 941 kJ/mol
F2 bond energy = 154 kJ/mol
calculate the N-F bond energy.
A) 113 kJ/mol
B) 268 kJ/mol
C) 66 kJ/mol
D) 317 kJ/mol
E) none of these
F2 bond energy = 154 kJ/mol

A) 113 kJ/mol
B) 268 kJ/mol
C) 66 kJ/mol
D) 317 kJ/mol
E) none of these
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51
Which of the following molecules and ions has a lone pair of electrons on the central atom?
A) PCl5
B) XeO4
C) BeCl2
D) CH3+
E) CH3-
A) PCl5
B) XeO4
C) BeCl2
D) CH3+
E) CH3-
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52
Given the following bond energies:
estimate H for the reaction H2O2 + CH3OH H2CO + 2H2O.
A) -145 kJ
B) +291 kJ
C) -291 kJ
D) +145 kJ
E) -287 kJ

A) -145 kJ
B) +291 kJ
C) -291 kJ
D) +145 kJ
E) -287 kJ
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53
In which pair do both compounds exhibit predominantly ionic bonding?
A) KI and O3
B) PCl5 and HCl
C) NaF and H2O
D) NaCl and CaO
E) Na2SO4 and BF3
A) KI and O3
B) PCl5 and HCl
C) NaF and H2O
D) NaCl and CaO
E) Na2SO4 and BF3
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54
Using the following bond energies:
estimate the heat of combustion for 1 mol of acetylene: 
A) +365 kJ
B) 1228 kJ
C) -447 kJ
D) -1228 kJ
E) +447 kJ


A) +365 kJ
B) 1228 kJ
C) -447 kJ
D) -1228 kJ
E) +447 kJ
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55
As the number of bonds between two carbon atoms increases, which one of the following decreases?
A) the number of electrons between the carbon atoms
B) the bond length
C) the bond energy
D) all of these
E) none of these
A) the number of electrons between the carbon atoms
B) the bond length
C) the bond energy
D) all of these
E) none of these
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56
What does X represent in the Lewis structure X=X?
A) N
B) C
C) B
D) F
E) O
A) N
B) C
C) B
D) F
E) O
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57
Use the following electronegativity values to answer the question:
C 2.5
Cl 3.2
H 2.2
N 3.0
O 3.4
This molecule shows the smallest number of lone pairs in its Lewis structure.
A) CH3CHO
B) CO2
C) CH3Cl
D) C2H6
E) none of these
C 2.5
Cl 3.2
H 2.2
N 3.0
O 3.4
This molecule shows the smallest number of lone pairs in its Lewis structure.
A) CH3CHO
B) CO2
C) CH3Cl
D) C2H6
E) none of these
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58
In the Lewis structure for elemental nitrogen, there is(are)
A) a triple bond between the nitrogens.
B) three unpaired electrons.
C) a double bond between the nitrogens.
D) a single bond between the nitrogens.
E) none of these
A) a triple bond between the nitrogens.
B) three unpaired electrons.
C) a double bond between the nitrogens.
D) a single bond between the nitrogens.
E) none of these
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59
Using the following data reactions: H° (kJ)
H2(g) + Cl2(g) 2HCl(g)
-184
H2(g) 2H(g)
432
Cl2(g) 2Cl(g)
239
Calculate the energy of an H-Cl bond.
A) 518 kJ
B) 326 kJ
C) 856 kJ
D) 770 kJ
E) 428 kJ
H2(g) + Cl2(g) 2HCl(g)
-184
H2(g) 2H(g)
432
Cl2(g) 2Cl(g)
239
Calculate the energy of an H-Cl bond.
A) 518 kJ
B) 326 kJ
C) 856 kJ
D) 770 kJ
E) 428 kJ
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60
Consider the compound crotonaldehyde, whose skeleton is 
How many nonbonding electrons appear in the Lewis structure of this molecule?
A) 2
B) 4
C) 8
D) 10
E) 6

How many nonbonding electrons appear in the Lewis structure of this molecule?
A) 2
B) 4
C) 8
D) 10
E) 6
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61
As indicated by Lewis structures, which of the following would probably not exist as a stable molecule?
A) CH2O
B) C2H2
C) CH3O
D) C3H4
E) CH3OH
A) CH2O
B) C2H2
C) CH3O
D) C3H4
E) CH3OH
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62
Given the following Lewis structure: 
How many unshared pairs of electrons are present in this molecule?
A) 1
B) 4
C) 0
D) 3
E) 2

How many unshared pairs of electrons are present in this molecule?
A) 1
B) 4
C) 0
D) 3
E) 2
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63
Which of the following is not a valid resonance structure for N3-?
A)
B)
C)
D)
E) All are valid.
A)

B)

C)

D)

E) All are valid.
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64
Select the best Lewis structure for acetone, CH3COCH3.
A)
B)
C)
D)
E)
A)

B)

C)

D)

E)

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65
When molten sulfur reacts with chlorine gas, a vile-smelling orange liquid forms that is found to have the empirical formula SCl. Which of the following could be the correct Lewis structure for this compound?
A)
B)
C)
D)
E)
A)

B)

C)

D)

E)

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66
Which species has an unpaired electron?
A) OH-
B) N2
C) CO
D) NO
E) none of these
A) OH-
B) N2
C) CO
D) NO
E) none of these
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67
As indicated by Lewis structures, which of the following species could probably not exist as a stable molecule?
A) N2H6
B) N2O4
C) N2H2
D) N2H4
E) NH3
A) N2H6
B) N2O4
C) N2H2
D) N2H4
E) NH3
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68
Given the following Lewis structure: 
How many electrons are shared between carbons 1 and 2?
A) 6
B) 2
C) 0
D) 8
E) 4

How many electrons are shared between carbons 1 and 2?
A) 6
B) 2
C) 0
D) 8
E) 4
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69
How many of the following molecules and ions contain double or triple bonds? N2 H2CO C2H4 C2H6 SCN-
A) 5
B) 1
C) 4
D) 2
E) 3
A) 5
B) 1
C) 4
D) 2
E) 3
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70
In the Lewis structure for I3-, there are _________ electrons around the central iodine atom.
A) 12
B) 4
C) 8
D) 10
E) none of these
A) 12
B) 4
C) 8
D) 10
E) none of these
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71
How many electrons are in the Lewis structure for NO2-?
A) 18
B) 20
C) 32
D) 16
E) 30
A) 18
B) 20
C) 32
D) 16
E) 30
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72
Complete the Lewis structure for the molecule
This molecule has __________ single bonds and __________ multiple bonds.
A) 11, 2
B) 6, 3
C) 13, 0
D) 11, 5
E) 4, 2

A) 11, 2
B) 6, 3
C) 13, 0
D) 11, 5
E) 4, 2
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73
The Lewis structure for H3BO3 is
A)
B)
C)
D)
E)
A)

B)

C)

D)

E)

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74
Which molecule or ion violates the octet rule?
A) I3-
B) PF3
C) H2O
D) NO3-
E) none of these
A) I3-
B) PF3
C) H2O
D) NO3-
E) none of these
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75
Draw the Lewis structures of the molecules below, and use them to answer the following questions.
I. BH3
II. NO2
III. SF6
IV. O3
V. PCl5
Which of the molecules obeys the octet rule?
A) II
B) IV
C) III
D) V
E) I
I. BH3
II. NO2
III. SF6
IV. O3
V. PCl5
Which of the molecules obeys the octet rule?
A) II
B) IV
C) III
D) V
E) I
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76
How many of the following exhibit resonance? O3 OCl2 NF3 CCl4
A) 2
B) 0
C) 3
D) 1
E) 4
A) 2
B) 0
C) 3
D) 1
E) 4
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77
For which compound is resonance required to describe the structure adequately?
A) PCl3
B) CO32-
C) HCN
D) NH4+
E) none of these
A) PCl3
B) CO32-
C) HCN
D) NH4+
E) none of these
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78
How many resonance structures does the molecule SO2 have?
A) 2
B) 1
C) 4
D) 0
E) 3
A) 2
B) 1
C) 4
D) 0
E) 3
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79
How many acceptable and equivalent resonance structures can be drawn for NO3-?
A) 2
B) 3
C) 4
D) 1
E) 0
A) 2
B) 3
C) 4
D) 1
E) 0
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80
For which of the following can we not draw a stable Lewis structure?
A) PCl5
B) OCl6
C) SCl6
D) All of these have stable Lewis structures.
E) None of these has a stable Lewis structure.
A) PCl5
B) OCl6
C) SCl6
D) All of these have stable Lewis structures.
E) None of these has a stable Lewis structure.
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