Deck 15: Acids and Bases
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Deck 15: Acids and Bases
1
Which of the following statements is true?
A)A strong acid is composed of a proton and an anion that have a very strong attraction for one another.
B)A weak base is composed of a cation and an anion with a very weak attraction between them.
C)A strong acid has a strong conjugate base.
D)The conjugate base of a very weak acid is stronger than the conjugate base of a strong acid.
E)None of the above statements are true.
A)A strong acid is composed of a proton and an anion that have a very strong attraction for one another.
B)A weak base is composed of a cation and an anion with a very weak attraction between them.
C)A strong acid has a strong conjugate base.
D)The conjugate base of a very weak acid is stronger than the conjugate base of a strong acid.
E)None of the above statements are true.
The conjugate base of a very weak acid is stronger than the conjugate base of a strong acid.
2
Which of the following acids will have the strongest conjugate base?
A)HCl
B)HClO4
C)HNO3
D)HCN
E)HI
A)HCl
B)HClO4
C)HNO3
D)HCN
E)HI
HCN
3
What is the conjugate acid of HCO3⁻?
A)H3O+
B)H2O
C)CO32-
D)OH⁻
E)H2CO3
A)H3O+
B)H2O
C)CO32-
D)OH⁻
E)H2CO3
H2CO3
4
Identify the weak diprotic acid.
A)HNO3
B)H3PO4
C)H2SO3
D)HClO4
E)H2SO4
A)HNO3
B)H3PO4
C)H2SO3
D)HClO4
E)H2SO4
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5
Identify the triprotic acid.
A)HNO3
B)H3PO4
C)H2SO3
D)HClO4
E)H2SO4
A)HNO3
B)H3PO4
C)H2SO3
D)HClO4
E)H2SO4
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6
The stronger the acid,then which of the following is true?
A)The stronger the conjugate acid.
B)The stronger the conjugate base.
C)The weaker the conjugate base.
D)The weaker the conjugate acid.
E)None of the above.
A)The stronger the conjugate acid.
B)The stronger the conjugate base.
C)The weaker the conjugate base.
D)The weaker the conjugate acid.
E)None of the above.
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7
Which of the following is a weak acid?
A)HClO4
B)H2SO4
C)HCl
D)HCO2H
E)HNO3
A)HClO4
B)H2SO4
C)HCl
D)HCO2H
E)HNO3
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8
Which of the following species is amphoteric?
A)CO32-
B)HF
C)NH4⁺
D)HPO42-
E)None of the above are amphoteric.
A)CO32-
B)HF
C)NH4⁺
D)HPO42-
E)None of the above are amphoteric.
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9
Which of the following is a Br∅nsted-Lowry acid?
A)NH4+
B)CH4
C)NH2-
D)NH3
E)Br2
A)NH4+
B)CH4
C)NH2-
D)NH3
E)Br2
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10
What is the concentration of hydroxide ions in pure water at 30.0∘C,if Kw at this temperature is
1.47 × 10-14?
A)1.00 × 10-7 M
B)1.30 × 10-7 M
C)1.47 × 10-7 M
D)8.93 × 10-8 M
E)1.21 × 10-7 M
1.47 × 10-14?
A)1.00 × 10-7 M
B)1.30 × 10-7 M
C)1.47 × 10-7 M
D)8.93 × 10-8 M
E)1.21 × 10-7 M
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11
Which of the following is an Arrhenius acid?
A)H2SO4
B)LiOH
C)NH2CH3
D)CH3CH3
E)More than one of these is an Arrhenius acid.
A)H2SO4
B)LiOH
C)NH2CH3
D)CH3CH3
E)More than one of these is an Arrhenius acid.
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12
Which of the following is true?
A)A neutral solution contains [H2O] = [H3O⁺]
B)A neutral solution does not contain any H3O+ or OH-
C)An acidic solution has [H3O⁺] > [OH⁻]
D)A basic solution does not contain H3O+
E)None of the above are true.
A)A neutral solution contains [H2O] = [H3O⁺]
B)A neutral solution does not contain any H3O+ or OH-
C)An acidic solution has [H3O⁺] > [OH⁻]
D)A basic solution does not contain H3O+
E)None of the above are true.
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13
What is the conjugate base of H2PO4⁻?
A)HPO42-
B)PO43-
C)H3PO4
D)H3O+
E)OH⁻
A)HPO42-
B)PO43-
C)H3PO4
D)H3O+
E)OH⁻
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14
Place the following in order of increasing acid strength.
HBrO2 HBrO3 HBrO HBrO4
A)HBrO2 < HBrO4 < HBrO < HBrO3
B)HBrO < HBrO2 < HBrO3 < HBrO4
C)HBrO2 < HBrO3 < HBrO4 < HBrO
D)HBrO4 < HBrO2 < HBrO3 < HBrO
E)HBrO < HBrO4 < HBrO3 < HBrO2
HBrO2 HBrO3 HBrO HBrO4
A)HBrO2 < HBrO4 < HBrO < HBrO3
B)HBrO < HBrO2 < HBrO3 < HBrO4
C)HBrO2 < HBrO3 < HBrO4 < HBrO
D)HBrO4 < HBrO2 < HBrO3 < HBrO
E)HBrO < HBrO4 < HBrO3 < HBrO2
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15
Which of the following is a Br∅nsted-Lowry base?
A)CH4
B)HCN
C)NH3
D)Cl2
E)None of the above are Br∅nsted-Lowry bases.
A)CH4
B)HCN
C)NH3
D)Cl2
E)None of the above are Br∅nsted-Lowry bases.
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16
How many of the following are weak acids?
HCN HClO2 HNO3 H2PO4⁻
A)0
B)1
C)3
D)4
E)2
HCN HClO2 HNO3 H2PO4⁻
A)0
B)1
C)3
D)4
E)2
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17
Which of the following is not a conjugate acid-base pair?
A)NH4+/NH3
B)H3O⁺/OH⁻
C)H2SO3/HSO3⁻
D)C2H3O2⁻/HC2H3O2
E)All of the above are conjugate acid-base pairs.
A)NH4+/NH3
B)H3O⁺/OH⁻
C)H2SO3/HSO3⁻
D)C2H3O2⁻/HC2H3O2
E)All of the above are conjugate acid-base pairs.
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18
Which of the following solutions would have the most basic pH? Assume that they are all 0.10 M in acid at 25∘C.The acid is followed by its Ka value.
A)HF,3.5 × 10-4
B)HCN,4.9 × 10-10
C)HNO2,4.6 × 10-4
D)HCHO2,1.8 × 10-4
E)HClO2,1.1 × 10-2
A)HF,3.5 × 10-4
B)HCN,4.9 × 10-10
C)HNO2,4.6 × 10-4
D)HCHO2,1.8 × 10-4
E)HClO2,1.1 × 10-2
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19
Which of the following is a strong acid?
A)C6H5CO2H
B)HCN
C)HClO4
D)NH4+
E)H2O
A)C6H5CO2H
B)HCN
C)HClO4
D)NH4+
E)H2O
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20
Which of the following is an Arrhenius base?
A)CH3CO2H
B)NaOH
C)CH3OH
D)LiCl
E)More than one of these compounds is an Arrhenius base.
A)CH3CO2H
B)NaOH
C)CH3OH
D)LiCl
E)More than one of these compounds is an Arrhenius base.
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21
Calculate the concentration of OH⁻ in a solution that contains 3.9 × 10-4 M H3O⁺ at 25°C.Identify the solution as acidic,basic or neutral.
A)2.6 × 10-11 M,acidic
B)2.6 × 10-11 M,basic
C)3.9 × 10-4 M,neutral
D)2.7 × 10-2 M,basic
E)2.7 × 10-2 M,acidic
A)2.6 × 10-11 M,acidic
B)2.6 × 10-11 M,basic
C)3.9 × 10-4 M,neutral
D)2.7 × 10-2 M,basic
E)2.7 × 10-2 M,acidic
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22
Determine the pH of a 0.00598 M HClO4 solution.
A)1.777
B)6.434
C)7.566
D)2.223
E)3.558
A)1.777
B)6.434
C)7.566
D)2.223
E)3.558
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23
Calculate the hydronium ion concentration in an aqueous solution with a pH of 9.85 at 25°C.
A)7.1 × 10-5 M
B)4.2 × 10-10 M
C)8.7 × 10-10 M
D)6.5 × 10-5 M
E)1.4 × 10-10 M
A)7.1 × 10-5 M
B)4.2 × 10-10 M
C)8.7 × 10-10 M
D)6.5 × 10-5 M
E)1.4 × 10-10 M
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24
What is the pH of pure water at 40.0°C if the Kw at this temperature is 2.92 × 10-14?
A)6.767
B)0.465
C)7.000
D)7.233
E)8.446
A)6.767
B)0.465
C)7.000
D)7.233
E)8.446
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25
Which of the following acids is the strongest? The acid is followed by its Ka value.
A)HF,3.5 × 10-4
B)HCN,4.9 × 10-10
C)HNO2,4.6 × 10-4
D)HCHO2,1.8 × 10-4
E)HClO2,1.1 × 10-2
A)HF,3.5 × 10-4
B)HCN,4.9 × 10-10
C)HNO2,4.6 × 10-4
D)HCHO2,1.8 × 10-4
E)HClO2,1.1 × 10-2
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26
Determine the pOH of a 0.461 M C6H5CO2H M solution if the Ka of C6H5CO2H is 6.5 × 10-5.
A)2.26
B)4.52
C)11.74
D)9.48
E)5.48
A)2.26
B)4.52
C)11.74
D)9.48
E)5.48
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27
Determine the [H3O⁺] in a 0.265 M HClO solution.The Ka of HClO is 2.9 × 10-8.
A)1.1 × 10-10 M
B)7.7 × 10-9 M
C)1.3 × 10-6 M
D)4.9 × 10-4 M
E)8.8 × 10-5 M
A)1.1 × 10-10 M
B)7.7 × 10-9 M
C)1.3 × 10-6 M
D)4.9 × 10-4 M
E)8.8 × 10-5 M
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28
Which of the following is a polyprotic acid?
A)HF
B)H2SO4
C)HCN
D)CH4
E)HC2H3O2
A)HF
B)H2SO4
C)HCN
D)CH4
E)HC2H3O2
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29
What is the Kw of pure water at 50.0°C,if the pH is 6.630?
A)2.34 × 10-7
B)5.50 × 10-14
C)2.13 × 10-14
D)1.00 × 10-14
E)There is not enough information to calculate the Kw.
A)2.34 × 10-7
B)5.50 × 10-14
C)2.13 × 10-14
D)1.00 × 10-14
E)There is not enough information to calculate the Kw.
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30
Which of the following acids is the weakest? The acid is followed by its Ka value.
A)HC2H3O2,1.8 × 10-5
B)HIO,2.3 × 10-11
C)HBrO,2.3 × 10-9
D)HClO,2.9 × 10-8
E)C6H5CO2H,6.3 × 10-5
A)HC2H3O2,1.8 × 10-5
B)HIO,2.3 × 10-11
C)HBrO,2.3 × 10-9
D)HClO,2.9 × 10-8
E)C6H5CO2H,6.3 × 10-5
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31
Calculate the pH of a solution that contains 2.4 × 10-5 M H3O⁺ at 25°C.
A)2.40
B)9.38
C)4.62
D)11.60
E)4.17
A)2.40
B)9.38
C)4.62
D)11.60
E)4.17
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32
In a triprotic acid,which Ka has the highest value?
A)Ka1
B)Ka2
C)Ka3
D)Kb1
E)Kb2
A)Ka1
B)Ka2
C)Ka3
D)Kb1
E)Kb2
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33
Find the percent ionization of a 0.337 M HF solution.The Ka for HF is 3.5 × 10-4.
A)1.1%
B)1.2 × 10-2%
C)3.2%
D)3.5 × 10-2%
E)4.7%
A)1.1%
B)1.2 × 10-2%
C)3.2%
D)3.5 × 10-2%
E)4.7%
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34
Calculate the pH of a solution that contains 3.9 × 10-4 M H3O⁺ at 25°C.
A)4.59
B)3.41
C)10.59
D)9.41
E)0.59
A)4.59
B)3.41
C)10.59
D)9.41
E)0.59
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35
Calculate the pH of a solution that contains 7.8 × 10-6 M OH⁻ at 25°C.
A)1.28
B)5.11
C)12.72
D)8.89
E)9.64
A)1.28
B)5.11
C)12.72
D)8.89
E)9.64
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36
Calculate the concentration of H3O⁺ in a solution that contains 5.5 × 10-5 M OH⁻ at 25°C.Identify the solution as acidic,basic or neutral.
A)1.8 × 10-10 M,basic
B)1.8 × 10-10 M,acidic
C)5.5 × 10-10 M,neutral
D)9.2 × 10-1 M,acidic
E)9.2 × 10-1 M,basic
A)1.8 × 10-10 M,basic
B)1.8 × 10-10 M,acidic
C)5.5 × 10-10 M,neutral
D)9.2 × 10-1 M,acidic
E)9.2 × 10-1 M,basic
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37
Calculate the pOH of a solution that contains 3.9 × 10-4 M H3O⁺ at 25°C.
A)4.59
B)3.31
C)10.59
D)9.14
E)0.59
A)4.59
B)3.31
C)10.59
D)9.14
E)0.59
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38
Determine the pH of a 0.023 M HNO3 solution.
A)12.36
B)3.68
C)1.64
D)2.30
E)2.49
A)12.36
B)3.68
C)1.64
D)2.30
E)2.49
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39
Calculate the hydroxide ion concentration in an aqueous solution with a pH of 4.33 at 25°C.
A)2.1 × 10-10 M
B)9.7 × 10-10 M
C)4.7 × 10-5 M
D)3.8 × 10-5 M
E)6.3 × 10-6 M
A)2.1 × 10-10 M
B)9.7 × 10-10 M
C)4.7 × 10-5 M
D)3.8 × 10-5 M
E)6.3 × 10-6 M
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40
Determine the pH of a 0.461 M C6H5CO2H M solution if the Ka of C6H5CO2H is 6.5 × 10-5.
A)2.26
B)4.52
C)11.74
D)9.48
E)5.48
A)2.26
B)4.52
C)11.74
D)9.48
E)5.48
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41
Give the characteristics of a strong acid.
A)Ionizes completely in aqueous solutions.
B)Has a very electronegative atom attached to the oxygen.
C)Has a polar bond.
D)Has a weaker bond to hydrogen.
E)All of the above.
A)Ionizes completely in aqueous solutions.
B)Has a very electronegative atom attached to the oxygen.
C)Has a polar bond.
D)Has a weaker bond to hydrogen.
E)All of the above.
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42
Determine the pOH of a 0.227 M C5H5N solution at 25°C.The Kb of C5H5N is 1.7 × 10-9.
A)4.59
B)9.41
C)4.71
D)10.14
E)9.29
A)4.59
B)9.41
C)4.71
D)10.14
E)9.29
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43
Determine the pH of a 0.188 M NH3 solution at 25°C.The Kb of NH3 is 1.76 × 10-5.
A)5.480
B)2.740
C)8.520
D)11.260
E)12.656
A)5.480
B)2.740
C)8.520
D)11.260
E)12.656
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44
Which one of the following will form an acidic solution in water?
A)NH4Cl
B)NaF
C)LiI
D)KNO3
E)None of the above solutions will be acidic.
A)NH4Cl
B)NaF
C)LiI
D)KNO3
E)None of the above solutions will be acidic.
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45
Which of the following is a weak base?
A)NH(CH3)2
B)N2
C)NaOH
D)CH2CH2
E)None of the above are weak bases.
A)NH(CH3)2
B)N2
C)NaOH
D)CH2CH2
E)None of the above are weak bases.
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46
Determine the [OH⁻] concentration in a 0.235 M NaOH solution.
A)4.25 × 10-14 M
B)0.470 M
C)2.13 × 10-14 M
D)0.198 M
E)0.235 M
A)4.25 × 10-14 M
B)0.470 M
C)2.13 × 10-14 M
D)0.198 M
E)0.235 M
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47
Determine the Ka for CH3NH3⁺ at 25°C.The Kb for CH3NH2 is 4.4 × 10-4.
A)3.1 × 10-10
B)6.8 × 10-11
C)5.6 × 10-10
D)2.3 × 10-3
E)2.3 × 10-11
A)3.1 × 10-10
B)6.8 × 10-11
C)5.6 × 10-10
D)2.3 × 10-3
E)2.3 × 10-11
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48
Determine the pH of a 0.227 M C5H5N solution at 25°C.The Kb of C5H5N is 1.7 × 10-9.
A)4.59
B)9.41
C)4.71
D)10.14
E)9.29
A)4.59
B)9.41
C)4.71
D)10.14
E)9.29
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49
Determine the [OH⁻] concentration in a 0.169 M Ca(OH)2 solution.
A)0.338 M
B)0.169 M
C)5.92 × 10-14 M
D)2.96 × 10-14 M
E)0.298 M
A)0.338 M
B)0.169 M
C)5.92 × 10-14 M
D)2.96 × 10-14 M
E)0.298 M
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50
Which of the following bases is the weakest? The base is followed by its Kb value.
A)HOCH2CH2NH2,3.2 × 10-5
B)NH3,1.76 × 10-5
C)C5H5N,1.7 × 10-9
D)(CH3CH2)3N,5.2 × 10-4
E)Since these are all weak bases,they have the same strength.
A)HOCH2CH2NH2,3.2 × 10-5
B)NH3,1.76 × 10-5
C)C5H5N,1.7 × 10-9
D)(CH3CH2)3N,5.2 × 10-4
E)Since these are all weak bases,they have the same strength.
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51
Determine the pH of a 0.741 M KOH solution at 25°C.
A)0.13
B)13.87
C)0.17
D)12.65
E)11.88
A)0.13
B)13.87
C)0.17
D)12.65
E)11.88
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52
Which of the following bases is the strongest? The base is followed by its Kb.
A)(CH3CH2)2NH,8.6 × 10-4
B)CH3NH2,4.4 × 10-4
C)C6H5NH2,4.0 × 10-10
D)NH3,1.76 × 10-5
E)C5H5N,1.7 × 10-9
A)(CH3CH2)2NH,8.6 × 10-4
B)CH3NH2,4.4 × 10-4
C)C6H5NH2,4.0 × 10-10
D)NH3,1.76 × 10-5
E)C5H5N,1.7 × 10-9
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53
Give the pH of 0.330 M phosphoric acid.For phosphoric acid,Ka1 = 7.5 × 10-3,Ka2 = 6.2 × 10-8,and Ka3 = 4.2 × 10-13.
A)1.30
B)3.84
C)6.43
D)2.61
E)5.68
A)1.30
B)3.84
C)6.43
D)2.61
E)5.68
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54
Determine the pH of a 0.62 M NH4NO3 solution at 25°C.The Kb for NH3 is 1.76 × 10-5.
A)2.48
B)9.27
C)11.52
D)4.73
E)9.45
A)2.48
B)9.27
C)11.52
D)4.73
E)9.45
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55
Determine the pH of a 0.22 M NaF solution at 25°C.The Ka of HF is 3.5 × 10-5.
A)10.20
B)5.10
C)8.90
D)11.44
E)2.56
A)10.20
B)5.10
C)8.90
D)11.44
E)2.56
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56
Which of the following is a strong base?
A)Cl-
B)NH3
C)CH3OH
D)NO3⁻
E)KOH
A)Cl-
B)NH3
C)CH3OH
D)NO3⁻
E)KOH
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57
Determine the Kb for CN⁻ at 25°C.The Ka for HCN is 4.9 × 10-10.
A)4.9 × 10-14
B)2.3 × 10-9
C)1.4 × 10-5
D)2.0 × 10-5
E)3.7 × 10-7
A)4.9 × 10-14
B)2.3 × 10-9
C)1.4 × 10-5
D)2.0 × 10-5
E)3.7 × 10-7
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58
Determine the Ka of an acid whose 0.294 M solution has a pH of 2.80.
A)1.2 × 10-5
B)8.5 × 10-6
C)2.7
D)4.9 × 10-7
E)5.4 × 10-3
A)1.2 × 10-5
B)8.5 × 10-6
C)2.7
D)4.9 × 10-7
E)5.4 × 10-3
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59
Which one of the following will form a basic solution in water?
A)NaC2H3O2
B)LiCN
C)KClO2
D)LiBrO
E)All of the above will form basic solutions.
A)NaC2H3O2
B)LiCN
C)KClO2
D)LiBrO
E)All of the above will form basic solutions.
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60
Determine the pH of a 0.116 M Ba(OH)2 solution at 25°C.
A)8.62
B)13.06
C)13.37
D)0.63
E)12.56
A)8.62
B)13.06
C)13.37
D)0.63
E)12.56
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61
Which Br∅nsted-Lowry acid is not considered to be a strong acid in water?
A)HI
B)HBr
C)H2SO3
D)H NO3
A)HI
B)HBr
C)H2SO3
D)H NO3
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62
Which of the following is a Lewis base?
A)AlF3
B)H2O
C)SiF4
D)C5H12
E)None of the above are Lewis bases.
A)AlF3
B)H2O
C)SiF4
D)C5H12
E)None of the above are Lewis bases.
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63
Match the following.
Lewis acid
A)electron pair donor
B)proton donor
C)produces protons in aqueous solution
D)produces hydroxide ions in aqueous solution
E)electron pair acceptor
F)proton acceptor
Lewis acid
A)electron pair donor
B)proton donor
C)produces protons in aqueous solution
D)produces hydroxide ions in aqueous solution
E)electron pair acceptor
F)proton acceptor
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64
Describe the relationship between molecular structure and acid strength.
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65
What is the autoionization of water?
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66
Define a Lewis acid.
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67
Do both protons ionize instantaneously from a diprotic acid such as H2CO3? Explain your answer.
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68
What does the term amphoteric mean?
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69
Match the following.
Arrhenius acid
A)electron pair donor
B)proton donor
C)produces protons in aqueous solution
D)produces hydroxide ions in aqueous solution
E)electron pair acceptor
F)proton acceptor
Arrhenius acid
A)electron pair donor
B)proton donor
C)produces protons in aqueous solution
D)produces hydroxide ions in aqueous solution
E)electron pair acceptor
F)proton acceptor
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70
Calculate the hydronium ion concentration in an aqueous solution that contains 2.50 × 10-6 M in hydroxide ion.
A)4.00 × 10-7 M
B)4.00 × 10-8 M
C)4.00 × 10-9 M
D)5.00 × 10-9 M
A)4.00 × 10-7 M
B)4.00 × 10-8 M
C)4.00 × 10-9 M
D)5.00 × 10-9 M
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71
Match the following.
Lewis base
A)electron pair donor
B)proton donor
C)produces protons in aqueous solution
D)produces hydroxide ions in aqueous solution
E)electron pair acceptor
F)proton acceptor
Lewis base
A)electron pair donor
B)proton donor
C)produces protons in aqueous solution
D)produces hydroxide ions in aqueous solution
E)electron pair acceptor
F)proton acceptor
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72
Calculate the hydroxide ion concentration in an aqueous solution that contains 3.50 × 10-4 M in hydronium ion.
A)2.86 × 10-3 M
B)2.86 × 10-10 M
C)2.86 × 10-11 M
D)3.50 × 10-11 M
A)2.86 × 10-3 M
B)2.86 × 10-10 M
C)2.86 × 10-11 M
D)3.50 × 10-11 M
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73
Match the following.
Br∅nsted-Lowry base
A)electron pair donor
B)proton donor
C)produces protons in aqueous solution
D)produces hydroxide ions in aqueous solution
E)electron pair acceptor
F)proton acceptor
Br∅nsted-Lowry base
A)electron pair donor
B)proton donor
C)produces protons in aqueous solution
D)produces hydroxide ions in aqueous solution
E)electron pair acceptor
F)proton acceptor
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74
What is the difference between a strong and weak acid?
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75
Identify the strongest acid.
A)HF
B)HBr
C)HI
D)HCl
E)Not enough information is given.
A)HF
B)HBr
C)HI
D)HCl
E)Not enough information is given.
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76
Identify the strongest acid.
A)HClO4
B)HClO3
C)HClO2
D)HClO
E)Not enough information is given.
A)HClO4
B)HClO3
C)HClO2
D)HClO
E)Not enough information is given.
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77
Which of the following is a Lewis acid?
A)BCl3
B)CH4
C)NH3
D)CHCl3
E)None of the above are Lewis acids.
A)BCl3
B)CH4
C)NH3
D)CHCl3
E)None of the above are Lewis acids.
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78
Match the following.
Br∅nsted-Lowry acid
A)electron pair donor
B)proton donor
C)produces protons in aqueous solution
D)produces hydroxide ions in aqueous solution
E)electron pair acceptor
F)proton acceptor
Br∅nsted-Lowry acid
A)electron pair donor
B)proton donor
C)produces protons in aqueous solution
D)produces hydroxide ions in aqueous solution
E)electron pair acceptor
F)proton acceptor
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79
Match the following.
Arrhenius base
A)electron pair donor
B)proton donor
C)produces protons in aqueous solution
D)produces hydroxide ions in aqueous solution
E)electron pair acceptor
F)proton acceptor
Arrhenius base
A)electron pair donor
B)proton donor
C)produces protons in aqueous solution
D)produces hydroxide ions in aqueous solution
E)electron pair acceptor
F)proton acceptor
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80
When dissolved in water,which compound is generally considered to be an Arrhenius acid?
A)HNO2
B)KOH
C)Li F
D)CH3OH
A)HNO2
B)KOH
C)Li F
D)CH3OH
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