Deck 9: Models of Chemical Bonding
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Deck 9: Models of Chemical Bonding
1
Which one of the following properties is least characteristic of typical ionic compounds?
A)high melting point
B)high boiling point
C)brittleness
D)poor electrical conductor when solid
E)poor electrical conductor when molten
A)high melting point
B)high boiling point
C)brittleness
D)poor electrical conductor when solid
E)poor electrical conductor when molten
poor electrical conductor when molten
2
The lattice energy for ionic crystals increases as the charge on the ions _____________ and the size of the ions __________________.
A)increases,increases
B)increases,decreases
C)decreases,increases
D)decreases,decreases
E)None of these is generally correct.
A)increases,increases
B)increases,decreases
C)decreases,increases
D)decreases,decreases
E)None of these is generally correct.
increases,decreases
3
In which of these substances are the atoms held together by metallic bonding?
A)CO2
B)Si
C)Br2
D)S8
E)Cr
A)CO2
B)Si
C)Br2
D)S8
E)Cr
Cr
4
The lattice energy of MgCl2 is the energy change for which one of the following processes?
A)Mg(s)+ Cl2(g) MgCl2(s)
B)Mg(g)+ 2Cl(g) MgCl2(s)
C)Mg2+(s)+ 2Cl-(g) MgCl2(g)
D)Mg2+(g)+ 2Cl-(g) MgCl2(s)
E)MgCl2(aq) MgCl2(s)
A)Mg(s)+ Cl2(g) MgCl2(s)
B)Mg(g)+ 2Cl(g) MgCl2(s)
C)Mg2+(s)+ 2Cl-(g) MgCl2(g)
D)Mg2+(g)+ 2Cl-(g) MgCl2(s)
E)MgCl2(aq) MgCl2(s)
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5
Select the compound with the lowest lattice energy.
A)CsBr(s)
B)NaCl(s)
C)SrO(s)
D)CaO(s)
E)KBr(s)
A)CsBr(s)
B)NaCl(s)
C)SrO(s)
D)CaO(s)
E)KBr(s)
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6
Select the element whose Lewis symbol is correct. 
A)a
B)b
C)c
D)d
E)e

A)a
B)b
C)c
D)d
E)e
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7
In which of these substances are the atoms held together by polar covalent bonding?
A)SrCl2
B)CsCl
C)ClF
D)TiF2
E)S8
A)SrCl2
B)CsCl
C)ClF
D)TiF2
E)S8
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8
Which of the following is an ionic compound?
A)H2S
B)NH3
C)I2
D)KI
E)CCl4
A)H2S
B)NH3
C)I2
D)KI
E)CCl4
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9
Select the compound with the highest lattice energy.
A)CaS(s)
B)BaO(s)
C)NaI(s)
D)LiBr(s)
E)MgO(s)
A)CaS(s)
B)BaO(s)
C)NaI(s)
D)LiBr(s)
E)MgO(s)
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10
Select the correct formula for a compound formed from calcium and chlorine.
A)CaCl
B)CaCl2
C)Ca2Cl
D)Ca2Cl2
E)CaCl3
A)CaCl
B)CaCl2
C)Ca2Cl
D)Ca2Cl2
E)CaCl3
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11
Select the element whose Lewis symbol is correct. 
A)a
B)b
C)c
D)d
E)e

A)a
B)b
C)c
D)d
E)e
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12
Arrange the following bonds in order of increasing bond strength.
A)C-I < C-Br < C-Cl < C-F
B)C-F < C-Cl < C-Br < C-I
C)C-Br < C-I < C-Cl < C-F
D)C-I < C-Br < C-F< C-Cl
E)None of these orders is correct.
A)C-I < C-Br < C-Cl < C-F
B)C-F < C-Cl < C-Br < C-I
C)C-Br < C-I < C-Cl < C-F
D)C-I < C-Br < C-F< C-Cl
E)None of these orders is correct.
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13
For which of the following elements (in their normal,stable forms)would it be correct to describe the bonding as involving "electron pooling"?
A)hydrogen
B)helium
C)sulfur
D)iodine
E)aluminum
A)hydrogen
B)helium
C)sulfur
D)iodine
E)aluminum
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14
Which of the following contains ionic bonding?
A)CO
B)SrF2
C)Al
D)OCl2
E)HCl
A)CO
B)SrF2
C)Al
D)OCl2
E)HCl
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15
Which of the following is a covalent compound?
A)Na2O
B)CaCl2
C)Cl2O
D)CsCl
E)Al2O3
A)Na2O
B)CaCl2
C)Cl2O
D)CsCl
E)Al2O3
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16
Which of the following contains covalent bonds?
A)BaO
B)IBr
C)Mg
D)LiBr
E)Cu
A)BaO
B)IBr
C)Mg
D)LiBr
E)Cu
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17
Select the strongest bond in the following group.
A)C-S
B)C-O
C)C=C
D)C N
E)C-F
A)C-S
B)C-O
C)C=C
D)C N
E)C-F
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18
The lattice energy of CaF2 is the energy change for which one,if any,of the following processes?
A)Ca2+(s)+ 2F-(g) CaF2(g)
B)CaF2(g) CaF2(s)
C)Ca(g)+ 2F(g) CaF2(s)
D)CaF2(aq) CaF2(s)
E)None of these choices is correct.
A)Ca2+(s)+ 2F-(g) CaF2(g)
B)CaF2(g) CaF2(s)
C)Ca(g)+ 2F(g) CaF2(s)
D)CaF2(aq) CaF2(s)
E)None of these choices is correct.
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19
Select the correct formula for a compound formed from barium and nitrogen.
A)BaN
B)BaN2
C)Ba2N3
D)Ba2N
E)Ba3N2
A)BaN
B)BaN2
C)Ba2N3
D)Ba2N
E)Ba3N2
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20
Analysis of an unknown substance showed that it has a high boiling point and is brittle.It is an insulator as a solid but conducts electricity when melted.Which of the following substances would have those characteristics?
A)HCl
B)Al
C)KBr
D)SiF4
E)I2
A)HCl
B)Al
C)KBr
D)SiF4
E)I2
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21
Ionic bonding typically occurs when a ______________ bonds with a ______________.
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22
Arrange calcium,rubidium,sulfur,and arsenic in order of decreasing electronegativity.
A)S > As > Rb > Ca
B)S > As > Ca > Rb
C)As > S > Rb > Ca
D)As > S > Ca > Rb
E)None of these orders is correct.
A)S > As > Rb > Ca
B)S > As > Ca > Rb
C)As > S > Rb > Ca
D)As > S > Ca > Rb
E)None of these orders is correct.
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23
Which of the following compounds displays the greatest ionic character in its bonds?
A)NO2
B)CO2
C)H2O
D)HF
E)NH3
A)NO2
B)CO2
C)H2O
D)HF
E)NH3
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24
Arrange oxygen,sulfur,calcium,rubidium and potassium in order of decreasing electronegativity.
A)O > S > Ca > K > Rb
B)O > S > Ca > Rb > K
C)O > S > Rb > K > Ca
D)O > S > Rb > Ca > K
E)None of these orders is correct.
A)O > S > Ca > K > Rb
B)O > S > Ca > Rb > K
C)O > S > Rb > K > Ca
D)O > S > Rb > Ca > K
E)None of these orders is correct.
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25
In not more than three sentences,describe the electron arrangement responsible for bonding in solid SrCl2.
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26
Which of the following elements is the least electronegative?
A)Si
B)Se
C)S
D)Sc
E)Sr
A)Si
B)Se
C)S
D)Sc
E)Sr
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27
When an atom is represented in a Lewis electron dot symbol,the element symbol represents ______________ and the dots represent ______________.
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28
Electronegativity is a measure of
A)the energy needed to remove an electron from an atom.
B)the energy released when an electron is added to an atom.
C)the magnitude of the negative charge on an electron.
D)the attraction by an atom for electrons in a chemical bond.
E)the magnitude of the negative charge on a molecule.
A)the energy needed to remove an electron from an atom.
B)the energy released when an electron is added to an atom.
C)the magnitude of the negative charge on an electron.
D)the attraction by an atom for electrons in a chemical bond.
E)the magnitude of the negative charge on a molecule.
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29
Hydrogenation of double and triple bonds is an important industrial process.Calculate (in kJ)the standard enthalpy change H° for the hydrogenation of ethyne (acetylene)to ethane.

Bond:
C-C
C C
C-H
H-H

A)-296 kJ
B)-51 kJ
C)51 kJ
D)296 kJ
E)381 kJ

Bond:
C-C
C C
C-H
H-H

A)-296 kJ
B)-51 kJ
C)51 kJ
D)296 kJ
E)381 kJ
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30
Acetone can be easily converted to isopropyl alcohol by addition of hydrogen to the carbon-oxygen double bond.Calculate the enthalpy of reaction using the bond energies given. 

A)-484 kJ
B)-366 kJ
C)-48 kJ
D)+48 kJ
E)+366 kJ


A)-484 kJ
B)-366 kJ
C)-48 kJ
D)+48 kJ
E)+366 kJ
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31
Arrange aluminum,nitrogen,phosphorus and indium in order of increasing electronegativity.
A)Al < In < N < P
B)Al < In < P < N
C)In < Al < P < N
D)In < P < Al < N
E)None of these orders is correct.
A)Al < In < N < P
B)Al < In < P < N
C)In < Al < P < N
D)In < P < Al < N
E)None of these orders is correct.
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32
When one mole of each of the following liquids is burned,which will produce the most heat energy?
A)C6H14
B)C5H12
C)C6H14O
D)C6H12O
E)C6H10O3
A)C6H14
B)C5H12
C)C6H14O
D)C6H12O
E)C6H10O3
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33
Combustion of a fat will release more energy than combustion of an equal mass of carbohydrate because
A)fats contain more bonds to oxygen than carbohydrates.
B)fats contain fewer bonds to oxygen than carbohydrates.
C)the total energy of the carbon-carbon and carbon-hydrogen bonds in fats is greater than the energy content of the carbon-oxygen and oxygen-hydrogen bonds in the reaction products (carbon dioxide and water).
D)the total energy of the carbon-carbon and carbon-hydrogen bonds in fats is greater than the energy content of the bonds in carbohydrates.
E)fats have higher molar masses than carbohydrates.
A)fats contain more bonds to oxygen than carbohydrates.
B)fats contain fewer bonds to oxygen than carbohydrates.
C)the total energy of the carbon-carbon and carbon-hydrogen bonds in fats is greater than the energy content of the carbon-oxygen and oxygen-hydrogen bonds in the reaction products (carbon dioxide and water).
D)the total energy of the carbon-carbon and carbon-hydrogen bonds in fats is greater than the energy content of the bonds in carbohydrates.
E)fats have higher molar masses than carbohydrates.
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34
Based on electronegativity trends in the periodic table,predict which of the following compounds will have the greatest % ionic character in its bonds.
A)H2O
B)LiI
C)CaO
D)RbF
E)HCl
A)H2O
B)LiI
C)CaO
D)RbF
E)HCl
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35
Which of the following elements is the most electronegative?
A)S
B)Ru
C)Si
D)Te
E)Cs
A)S
B)Ru
C)Si
D)Te
E)Cs
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36
Which one of the following properties is least characteristic of substances composed of small,covalently-bonded molecules?
A)low melting point
B)low boiling point
C)weak bonds
D)poor electrical conductor when solid
E)poor electrical conductor when molten
A)low melting point
B)low boiling point
C)weak bonds
D)poor electrical conductor when solid
E)poor electrical conductor when molten
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37
Covalent bonding typically occurs when a ______________ bonds with a ______________.
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38
Which of the following elements is the most electronegative?
A)Ne
B)Rb
C)P
D)I
E)Cl
A)Ne
B)Rb
C)P
D)I
E)Cl
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39
Nitrogen and hydrogen combine to form ammonia in the Haber process.Calculate (in kJ)the standard enthalpy change H° for the reaction written below,using the bond energies given.

Bond:
N N
H-H
N-H

A)-969 kJ
B)-204 kJ
C)-105 kJ
D)204 kJ
E)595 kJ

Bond:
N N
H-H
N-H

A)-969 kJ
B)-204 kJ
C)-105 kJ
D)204 kJ
E)595 kJ
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40
Select the most polar bond amongst the following.
A)C-O
B)Si-F
C)Cl-F
D)C-F
E)C-I
A)C-O
B)Si-F
C)Cl-F
D)C-F
E)C-I
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41
Covalently bonded substances do not necessarily exist as separate molecules.
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42
Bond energy increases as bond order increases,for bonding between a given pair of atoms.
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43
Using appropriate,real examples to illustrate your answer,describe the correlation between bond energy and bond length for a series of single bonds.
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44
The majority of elements are good electrical conductors when in solid form.
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45
The lattice energy of large ions is greater in magnitude than that of small ions of the same charge.
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46
Using appropriate,real examples to illustrate your answer,describe the correlation between bond energy and bond length for a series of varying bond order.
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47
The more C-O and O-H bonds there are in a substance,the greater will be the amount of heat released when a fixed mass of the substance is burned.
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48
Oxygen difluoride is an unstable molecule that reacts readily with water.Calculate the bond energy of the O-F bond using the standard enthalpy of reaction and the bond energy data provided.



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49
In not more than three sentences,describe the electron arrangement responsible for bonding in Cl2 molecules.
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50
A hypothetical ionic substance will not form merely because it has a high lattice energy.Explain why,using energy-based arguments.
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51
The lattice energy is the energy released when separated ions in the gas phase combine to form ionic molecules in the gas phase.
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52
Describe,with appropriate explanations,the key factors which affect the magnitude of the lattice energy of an ionic substance.
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53
Describe in brief how electronegativity values can be used to predict the percent ionic character of a bond between two atoms.
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54
The electrostatic energy of two charged particles is inversely proportional to the distance between them.
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55
Give a clear and concise definition of the term "electronegativity";i.e. ,what does it measure?
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56
Electronegativities on Pauling's scale are calculated from ionization energies and electron affinities.
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57
The electrostatic energy of two charged particles is inversely proportional to the square of the distance between them.
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58
No real bonds are 100% ionic in character.
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59
A single covalent bond consists of a single delocalized electron pair.
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60
Ethanol is sometimes used as an additive in oxygenated gasoline.Calculate its enthalpy of combustion using the bond energies given.



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