Deck 18: Acid-Base Equilibria
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Deck 18: Acid-Base Equilibria
1
The chloride ion, Cl−, is a typical Lewis acid.
False
2
The ammonium ion, NH4+, is a weak acid.
True
3
Hydrated metal ions in aqueous solution can act as Brønsted-Lowry acids.
True
4
In applying molecular orbital theory, the bond order is calculated in the same way as with Lewis structures.
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5
It is not possible to have a pH lying outside the range 0 to 14.
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6
The substance HCl is considered
A)a weak Arrhenius acid.
B)a weak Arrhenius base.
C)a strong Arrhenius acid.
D)a strong Arrhenius base.
E)a neutral compound.
A)a weak Arrhenius acid.
B)a weak Arrhenius base.
C)a strong Arrhenius acid.
D)a strong Arrhenius base.
E)a neutral compound.
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7
All Brønsted-Lowry bases have at least one lone pair of electrons.
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8
In order to be a Brønsted-Lowry base, a species must contain a proton.
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9
A solution of sodium acetate (CH3COONa) in water is weakly basic.
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10
All strong acids have weak conjugate bases.
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11
The substance H2SO3 is considered
A)a weak Arrhenius base.
B)a strong Arrhenius acid.
C)a strong Arrhenius base.
D)a neutral compound.
E)a weak Arrhenius acid.
A)a weak Arrhenius base.
B)a strong Arrhenius acid.
C)a strong Arrhenius base.
D)a neutral compound.
E)a weak Arrhenius acid.
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12
If a strong acid such as HCl is diluted sufficiently with water, the pH will be higher than 7.
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13
All weak acids have strong conjugate bases.
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14
If the compound HX is a strong acid (where H is the acidic proton in this acid), then the ion X− is a weak base.
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15
All Brønsted-Lowry bases contain the hydroxide ion, OH−.
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16
The strongest base which can exist in water is the hydroxide ion.
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17
Arrhenius bases raise the hydroxide ion concentration when dissolved in water.
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18
Kw = 1.0 × 10−14, regardless of temperature.
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19
All Lewis acids contain at least one proton.
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20
The substance HOBr is considered
A)a weak Arrhenius acid.
B)a weak Arrhenius base.
C)a strong Arrhenius acid.
D)a strong Arrhenius base.
E)a neutral compound.
A)a weak Arrhenius acid.
B)a weak Arrhenius base.
C)a strong Arrhenius acid.
D)a strong Arrhenius base.
E)a neutral compound.
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21
Which of the following liquids contains the strongest acid?
A)0.1 M HA, pH = 6.85
B)0.1 M HD , pH = 7.22
C)0.1 M HE, pH = 8.34
D)0.1 M HJ , pH = 11.88
E)Pure water
A)0.1 M HA, pH = 6.85
B)0.1 M HD , pH = 7.22
C)0.1 M HE, pH = 8.34
D)0.1 M HJ , pH = 11.88
E)Pure water
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22
Given: H2O(aq) + H2O(l) ⇄ H3O+(aq) + OH-(aq) ΔH°rxn > 0When the temperature of a sample of pure water is raised above 25°C,
A)the hydronium ion concentration will be greater than the hydroxide ion concentration.
B)the hydronium ion concentration will be less than the hydroxide ion concentration.
C)the value of K w will increase.
D)the hydronium ion concentration could change to 1.0 × 10 −10 M.
E)the hydroxide ion concentration could change to 1.0 × 10 −10 M.
A)the hydronium ion concentration will be greater than the hydroxide ion concentration.
B)the hydronium ion concentration will be less than the hydroxide ion concentration.
C)the value of K w will increase.
D)the hydronium ion concentration could change to 1.0 × 10 −10 M.
E)the hydroxide ion concentration could change to 1.0 × 10 −10 M.
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23
The substance (CH3CH2)2NH is considered
A)a weak acid.
B)a weak base.
C)a strong acid.
D)a strong base.
E)a neutral compound.
A)a weak acid.
B)a weak base.
C)a strong acid.
D)a strong base.
E)a neutral compound.
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24
Which of the following is the strongest base?
A)CH 3NH 2
B)NaNO 3
C)B(OH)3
D)Al(OH)3
E)LiOH
A)CH 3NH 2
B)NaNO 3
C)B(OH)3
D)Al(OH)3
E)LiOH
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25
Which, if any, of the following acids is strong?
A)Phosphoric
B)Carbonic
C)Acetic
D)Water
E)None of these choices are correct.
A)Phosphoric
B)Carbonic
C)Acetic
D)Water
E)None of these choices are correct.
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26
The substance NaNO3 is considered
A)a weak Arrhenius acid.
B)a weak Arrhenius base.
C)a strong Arrhenius acid.
D)a strong Arrhenius base.
E)a neutral compound.
A)a weak Arrhenius acid.
B)a weak Arrhenius base.
C)a strong Arrhenius acid.
D)a strong Arrhenius base.
E)a neutral compound.
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27
The substance Ba(OH)2 is considered
A)a weak Arrhenius acid.
B)a weak Arrhenius base.
C)a strong Arrhenius acid.
D)a strong Arrhenius base.
E)a neutral compound.
A)a weak Arrhenius acid.
B)a weak Arrhenius base.
C)a strong Arrhenius acid.
D)a strong Arrhenius base.
E)a neutral compound.
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28
Select the strongest acid from the following list.
A)HBrO 4
B)HClO
C)HBrO 2
D)HBrO
E)HIO
A)HBrO 4
B)HClO
C)HBrO 2
D)HBrO
E)HIO
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29
Which of the following aqueous systems has the highest pH?
A)0.1 M HA , p K a = 11.89
B)0.1 M HMO, p K a = 8.23
C)0.1 M HA , p K a = 4.55
D)0.1 M HBO, p K a = 2.43
E)Pure water
A)0.1 M HA , p K a = 11.89
B)0.1 M HMO, p K a = 8.23
C)0.1 M HA , p K a = 4.55
D)0.1 M HBO, p K a = 2.43
E)Pure water
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30
Which of the following is the strongest acid?
A)CH 3COOH
B)HF
C)H 3PO 4
D)H 2SO 3
E)HI
A)CH 3COOH
B)HF
C)H 3PO 4
D)H 2SO 3
E)HI
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31
Select the strongest acid from the following list.
A)HBrO
B)HBrO 2
C)HClO 2
D)HClO 3
E)HIO
A)HBrO
B)HBrO 2
C)HClO 2
D)HClO 3
E)HIO
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32
Which one of the following is a strong acid?
A)H 2CO 3
B)H 2SO 3
C)H 2SO 4
D)H 3PO 4
E)CH 3COOH
A)H 2CO 3
B)H 2SO 3
C)H 2SO 4
D)H 3PO 4
E)CH 3COOH
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33
Which of the following is the strongest acid?
A)CH 3COOH
B)HF
C)H 3PO 4
D)H 2SO 3
E)H 2SO 4
A)CH 3COOH
B)HF
C)H 3PO 4
D)H 2SO 3
E)H 2SO 4
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34
Which of the following pairs has the stronger acid listed first?
A)HBr, HI
B)HClO 2, HClO 3
C)H 2SeO 4, H 2SeO 3
D)HNO 2, HNO 3
E)HF, HCl
A)HBr, HI
B)HClO 2, HClO 3
C)H 2SeO 4, H 2SeO 3
D)HNO 2, HNO 3
E)HF, HCl
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35
The substance HClO4 is considered
A)a weak acid.
B)a weak base.
C)a strong acid.
D)a strong base.
E)a neutral compound.
A)a weak acid.
B)a weak base.
C)a strong acid.
D)a strong base.
E)a neutral compound.
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36
The substance Ca(OH)2 is considered
A)a weak Arrhenius acid.
B)a weak Arrhenius base.
C)a strong Arrhenius acid.
D)a strong Arrhenius base.
E)a neutral compound.
A)a weak Arrhenius acid.
B)a weak Arrhenius base.
C)a strong Arrhenius acid.
D)a strong Arrhenius base.
E)a neutral compound.
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37
Which one of the following will give a solution with a pH > 7, but is not an Arrhenius base in the strict sense?
A)CH 3NH 2
B)NaOH
C)CO 2
D)Ca(OH)2
E)CH 4
A)CH 3NH 2
B)NaOH
C)CO 2
D)Ca(OH)2
E)CH 4
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38
The substance NH3 is considered
A)a weak acid.
B)a weak base.
C)a strong acid.
D)a strong base.
E)a neutral compound.
A)a weak acid.
B)a weak base.
C)a strong acid.
D)a strong base.
E)a neutral compound.
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39
Which of the following pairs has the stronger acid listed first?
A)H 2AsO 3, H 2AsO 4
B)HI, HBr
C)HClO, HClO 3
D)H 2S, HCl
E)H 2SO 3, H 2SO 4
A)H 2AsO 3, H 2AsO 4
B)HI, HBr
C)HClO, HClO 3
D)H 2S, HCl
E)H 2SO 3, H 2SO 4
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40
Which of the following acids has the lowest pH?0.1 M HBO, pKa = 2.430.1 M HA, pKa = 4.550.1 M HMO, pKa = 8.230.1 M HST, pKa = 11.89pure water
A)HA
B)HST
C)HMO
D)HBO
E)Pure water
A)HA
B)HST
C)HMO
D)HBO
E)Pure water
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41
What is the pH of a 0.75 M HNO3 solution?
A)0.12
B)0.29
C)0.63
D)0.82
E)> 1.0
A)0.12
B)0.29
C)0.63
D)0.82
E)> 1.0
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42
What is the pOH of a 0.0085 M KOH solution?
A)2.07
B)4.77
C)9.23
D)11.93
E)None of these choices are correct.
A)2.07
B)4.77
C)9.23
D)11.93
E)None of these choices are correct.
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43
What is the [OH−] for a solution at 25°C that has [H3O+] = 2.35 × 10−3 M?
A)4.26 × 10 −5 M
B)2.35 × 10 −11 M
C)4.26 × 10 −12 M
D)2.35 × 10 −17 M
E)None of these choices are correct.
A)4.26 × 10 −5 M
B)2.35 × 10 −11 M
C)4.26 × 10 −12 M
D)2.35 × 10 −17 M
E)None of these choices are correct.
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44
Select the pair of substances in that an acid is listed followed by its conjugate base.
A)H +, HCl
B)NH 3, NH 4 +
C)HPO 4 2−, H 2PO 4 −
D)HCO 3 −, CO 3 2−
E)CH 3COOH, CH 3COOH 2 +
A)H +, HCl
B)NH 3, NH 4 +
C)HPO 4 2−, H 2PO 4 −
D)HCO 3 −, CO 3 2−
E)CH 3COOH, CH 3COOH 2 +
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45
What is the pH of a 0.0035 M KOH solution?
A)2.46
B)5.65
C)8.35
D)11.54
E)None of these choices are correct.
A)2.46
B)5.65
C)8.35
D)11.54
E)None of these choices are correct.
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46
What is the pH of a 0.050 M HBr solution?
A)0.89
B)1.12
C)1.30
D)3.00
E)None of these choices are correct.
A)0.89
B)1.12
C)1.30
D)3.00
E)None of these choices are correct.
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47
What is the pH of a 0.20 M HCl solution?
A)< 0
B)0.70
C)1.61
D)12.39
E)13.30
A)< 0
B)0.70
C)1.61
D)12.39
E)13.30
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48
Select the correct relationship among the concentrations of species present in a 1.0 M aqueous solution of the weak acid represented by HA.
A)[H 2O] > [A −] ~ [H 3O +] > [HA] > [OH −]
B)[H 2O] > [HA] > [A −] > [H 3O +] > [OH −]
C)[HA] > [H 2O] > [A −] > [H 3O +] > [OH −]
D)[H 2O] > [HA] > [A −] ~ [H 3O +] > [OH −]
E)[HA] > [H 2O] > [A −] ~ [H 3O +] > [OH −]
A)[H 2O] > [A −] ~ [H 3O +] > [HA] > [OH −]
B)[H 2O] > [HA] > [A −] > [H 3O +] > [OH −]
C)[HA] > [H 2O] > [A −] > [H 3O +] > [OH −]
D)[H 2O] > [HA] > [A −] ~ [H 3O +] > [OH −]
E)[HA] > [H 2O] > [A −] ~ [H 3O +] > [OH −]
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49
What is the [OH−] for a solution at 25°C that has [H3O+] = 8.23 × 10−2 M?
A)> 10 −5 M
B)1.22 × 10 −6 M
C)8.23 × 10 −12 M
D)1.22 × 10 −13 M
E)8.23 × 10 −16 M
A)> 10 −5 M
B)1.22 × 10 −6 M
C)8.23 × 10 −12 M
D)1.22 × 10 −13 M
E)8.23 × 10 −16 M
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50
The hydrated Al3+ ion, Al(H2O)63+, is a weak acid in water. What are the products of its reaction with H2O?Al(H2O)63+(aq) + H2O(l) → ?
A)Al(H 2O)5OH 2+( aq)+ H 3O +( aq)
B)Al(H 2O)6H 4+( aq)+ OH −( aq)
C)Al(H 2O)5 3+( aq)+ 2H 2O( l)
D)Al(H 2O)6OH 2+( aq)+ H 3O +( aq)
E)Al(H 2O)6 2+( aq)+ H 3O +( aq)
A)Al(H 2O)5OH 2+( aq)+ H 3O +( aq)
B)Al(H 2O)6H 4+( aq)+ OH −( aq)
C)Al(H 2O)5 3+( aq)+ 2H 2O( l)
D)Al(H 2O)6OH 2+( aq)+ H 3O +( aq)
E)Al(H 2O)6 2+( aq)+ H 3O +( aq)
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51
What is the pH of a 0.050 M LiOH solution?
A)< 1.0
B)1.30
C)3.00
D)11.00
E)12.70
A)< 1.0
B)1.30
C)3.00
D)11.00
E)12.70
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52
What is the [OH−] for a solution at 25°C that has pH = 4.29?
A)1.4 × 10 −2 M
B)5.l × 10 −5 M
C)1.9 × 10 −10 M
D)7.3 × 10 −13 M
E)9.71 M
A)1.4 × 10 −2 M
B)5.l × 10 −5 M
C)1.9 × 10 −10 M
D)7.3 × 10 −13 M
E)9.71 M
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53
What is the [H3O+] for a solution at 25°C that has pOH = 5.640?
A)2.34 × 10 −4 M
B)2.29 × 10 −6 M
C)4.37 × 10 −9 M
D)4.27 × 10 −11 M
E)8.360 M
A)2.34 × 10 −4 M
B)2.29 × 10 −6 M
C)4.37 × 10 −9 M
D)4.27 × 10 −11 M
E)8.360 M
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54
An aqueous solution is considered to be acidic if
A)the hydroxide ion concentration is 10 −6 M.
B)the hydrogen ion concentration is 10 −8 M.
C)the hydroxide and hydrogen ion concentrations are equal.
D)the hydroxide ion concentration is greater than the hydrogen ion concentration.
E)the hydroxide ion concentration is 10 −10 M.
A)the hydroxide ion concentration is 10 −6 M.
B)the hydrogen ion concentration is 10 −8 M.
C)the hydroxide and hydrogen ion concentrations are equal.
D)the hydroxide ion concentration is greater than the hydrogen ion concentration.
E)the hydroxide ion concentration is 10 −10 M.
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55
Select the pair of substances that is not a conjugate acid-base pair.
A)H 3O +, H 2O
B)HNO 2, NO 2 −
C)H 2SO 4, HSO 4 −
D)H 2S, S 2−
E)NH 3, NH 2 −
A)H 3O +, H 2O
B)HNO 2, NO 2 −
C)H 2SO 4, HSO 4 −
D)H 2S, S 2−
E)NH 3, NH 2 −
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56
What is the pOH of a 0.0250 M HI solution?
A)0.944
B)1.602
C)12.398
D)13.056
E)None of these choices are correct.
A)0.944
B)1.602
C)12.398
D)13.056
E)None of these choices are correct.
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57
When 14.7 mL of aqueous HBr (a strong acid) was added to water, 0.482 L of a solution with a pH of 4.23 was produced. What was the molarity of the original HBr solution?
A)1.9 × 10 −3 M
B)140 M
C)0.288 M
D)0.13 M
E)None of these choices are correct.
A)1.9 × 10 −3 M
B)140 M
C)0.288 M
D)0.13 M
E)None of these choices are correct.
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58
What is the pH of a 0.0125 M NaOH solution?
A)0.972
B)1.903
C)12.097
D)13.028
E)None of these choices are correct.
A)0.972
B)1.903
C)12.097
D)13.028
E)None of these choices are correct.
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59
What is the pH of a 0.00200 M HClO4 solution?
A)0.995
B)1.378
C)2.699
D)6.215
E)None of these choices are correct.
A)0.995
B)1.378
C)2.699
D)6.215
E)None of these choices are correct.
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60
Which one of the following pairs is not a conjugate acid-base pair?
A)H 2O/OH −
B)H 2O 2/HO 2 −
C)OH −/O 2−
D)H 2PO 4 −/HPO 4 2−
E)HCl/H +
A)H 2O/OH −
B)H 2O 2/HO 2 −
C)OH −/O 2−
D)H 2PO 4 −/HPO 4 2−
E)HCl/H +
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61
The acid dissociation constant Ka equals 1.26 × 10−2 for HSO4− and is 5.6 × 10−10 for NH4. Which statement about the following equilibrium is correct?HSO4−(aq) + NH3(aq)⇄ SO42−(aq) + NH4+(aq)
A)The reactants will be favored because ammonia is a stronger base than the sulfate anion.
B)The products will be favored because the hydrogen sulfate ion is a stronger acid than the ammonium ion.
C)Neither reactants nor products will be favored because all of the species are weak acids or bases.
D)The initial concentrations of the hydrogen sulfate ion and ammonia must be known before any prediction can be made.
E)This reaction is impossible to predict, since the strong acid and the weak base appear on the same side of the equation.
A)The reactants will be favored because ammonia is a stronger base than the sulfate anion.
B)The products will be favored because the hydrogen sulfate ion is a stronger acid than the ammonium ion.
C)Neither reactants nor products will be favored because all of the species are weak acids or bases.
D)The initial concentrations of the hydrogen sulfate ion and ammonia must be known before any prediction can be made.
E)This reaction is impossible to predict, since the strong acid and the weak base appear on the same side of the equation.
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62
What is the value of Kb for the cyanide anion, CN−? Ka(HCN) = 6.2 × 10−10
A)1.6 × 10 −4
B)1.6 × 10 −5
C)3.8 × 10 −4
D)3.8 × 10 −5
E)6.2 × 10 4
A)1.6 × 10 −4
B)1.6 × 10 −5
C)3.8 × 10 −4
D)3.8 × 10 −5
E)6.2 × 10 4
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63
According to Brønsted and Lowry, which one of the following is not a conjugate acid-base pair?
A)H 3O +/OH −
B)CH 3OH 2 +/CH 3OH
C)HI/I −
D)HSO 4 −/SO 4 2−
E)H 2/H −
A)H 3O +/OH −
B)CH 3OH 2 +/CH 3OH
C)HI/I −
D)HSO 4 −/SO 4 2−
E)H 2/H −
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64
What is the pH of a 0.0100 M sodium benzoate solution? Kb (C7H5O2) = 1.5 × 10−10
A)0.38
B)5.91
C)8.09
D)9.82
E)13.62
A)0.38
B)5.91
C)8.09
D)9.82
E)13.62
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65
A 0.15 M solution of chloroacetic acid has a pH of 1.86. What is the value of Ka for this acid?
A)7.2 × 10 1
B)0.16
C)0.099
D)0.0014
E)0.00027
A)7.2 × 10 1
B)0.16
C)0.099
D)0.0014
E)0.00027
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66
Butyric acid is responsible for the odor in rancid butter. A solution of 0.25 M butyric acid has a pH of 2.71. What is the Ka for the acid?
A)0.36
B)2.4 × 10 −2
C)7.8 × 10 −3
D)1.5 × 10 −5
E)None of these choices are correct.
A)0.36
B)2.4 × 10 −2
C)7.8 × 10 −3
D)1.5 × 10 −5
E)None of these choices are correct.
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67
A 0.050 M solution of the weak acid HA has [H3O+] = 3.77 × 10−4 M. What is the Ka for the acid?
A)7.5 × 10 −3 M
B)2.8 × 10 −6 M
C)7.0 × 10 −7 M
D)7.0 × 10 −8 M
E)2.6 × 10 −11 M
A)7.5 × 10 −3 M
B)2.8 × 10 −6 M
C)7.0 × 10 −7 M
D)7.0 × 10 −8 M
E)2.6 × 10 −11 M
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68
Lactic acid has a pKa of 3.08. What is the approximate degree of dissociation of a 0.35 M solution of lactic acid?
A)1.1%
B)2.2%
C)4.8%
D)14%
E)None of these choices are correct.
A)1.1%
B)2.2%
C)4.8%
D)14%
E)None of these choices are correct.
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69
Phosphoric acid, H3PO4, is a triprotic acid, for which Ka1 = 7.2 × 10−3, Ka2 = 6.3 × 10−8 and Ka3 = 4.2 × 10−13. What is the value of Kb for the hydrogen phosphate anion, HPO4?
A)6.3 × 10 −8
B)4.2 × 10 −13
C)1.4 × 10 −12
D)1.6 × 10 −7
E)2.4 × 10 −2
A)6.3 × 10 −8
B)4.2 × 10 −13
C)1.4 × 10 −12
D)1.6 × 10 −7
E)2.4 × 10 −2
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70
What is the value of Kb for the formate anion, HCOO−? Ka(HCOOH) = 2.1 × 10−4
A)−2.1 × 10 −4
B)2.1 × 10 −4
C)6.9 × 10 −6
D)4.8 × 10 −11
E)2.1 × 10 −18
A)−2.1 × 10 −4
B)2.1 × 10 −4
C)6.9 × 10 −6
D)4.8 × 10 −11
E)2.1 × 10 −18
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71
Arsenic acid, H3AsO4, is used industrially to manufacture insecticides. Arsenic acid is a polyprotic acid with K1 = 2.5 × 10−4, K2 = 5.6 × 10−8, and K3 = 3 × 10−13. What is the concentration of the HAsO42− in a solution whose initial arsenic acid concentration was 0.35 M?
A)9.4 × 10 −3 M
B)2.5 × 10 −4 M
C)8.8 × 10 −5 M
D)5.6 × 10 −8 M
E)None of these choices are correct.
A)9.4 × 10 −3 M
B)2.5 × 10 −4 M
C)8.8 × 10 −5 M
D)5.6 × 10 −8 M
E)None of these choices are correct.
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72
Formic acid, which is a component of insect venom, has a Ka = 1.8 × 10−4. What is the [H3O+] in a solution that is initially 0.10 M formic acid, HCOOH?
A)4.2 × 10 −3 M
B)8.4 × 10 −3 M
C)1.8 × 10 −4 M
D)1.8 × 10 −5 M
E)1.8 × 10 −6 M
A)4.2 × 10 −3 M
B)8.4 × 10 −3 M
C)1.8 × 10 −4 M
D)1.8 × 10 −5 M
E)1.8 × 10 −6 M
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73
Picric acid has been used in the leather industry and in etching copper. However, its laboratory use has been restricted because it dehydrates on standing and can become shock sensitive. It has an acid dissociation constant of 0.42. What is the [H3O+] for a 0.20 M solution of picric acid?
A)0.022 M
B)0.052 M
C)0.15 M
D)0.29 M
E)None of these choices are correct.
A)0.022 M
B)0.052 M
C)0.15 M
D)0.29 M
E)None of these choices are correct.
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74
What is the pH of a 0.050 M triethylamine, (C2H5)3N, solution?Kb for triethylamine is 5.3 × 10−4.
A)11.69
B)8.68
C)5.32
D)2.31
E)< 2.0
A)11.69
B)8.68
C)5.32
D)2.31
E)< 2.0
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75
A student adds 0.1 mol of oxalic acid and 0.1 mol of sodium dihydrogen phosphate to enough water to make 1.0 L of solution. The following equilibrium is established with the concentrations of the products greater than the concentrations of the reactants. Which of the statements about the equilibrium system is correct? H2C2O4(aq) + H2PO4(aq)⇄ HC2O4(aq) + H3PO4(aq)
A)Oxalic acid is a weaker acid than phosphoric acid.
B)The hydrogen oxalate anion, HC 2O 4, is a stronger base than the dihydrogen phosphate anion, H 2PO 4.
C)Phosphoric acid is a weaker acid than oxalic acid.
D)The dihydrogen phosphate anion, H 2PO 4 −, is a stronger acid than oxalic acid.
E)Water is a stronger acid than either oxalic or phosphoric acids.
A)Oxalic acid is a weaker acid than phosphoric acid.
B)The hydrogen oxalate anion, HC 2O 4, is a stronger base than the dihydrogen phosphate anion, H 2PO 4.
C)Phosphoric acid is a weaker acid than oxalic acid.
D)The dihydrogen phosphate anion, H 2PO 4 −, is a stronger acid than oxalic acid.
E)Water is a stronger acid than either oxalic or phosphoric acids.
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76
What is the value of Ka for the methylammonium ion, CH3NH3+? Kb(CH3NH2) = 4.4 × 10−4
A)4.4 × 10 −4
B)4.8 × 10 −6
C)4.4 × 10 −10
D)2.3 × 10 −11
E)4.4 × 10 −18
A)4.4 × 10 −4
B)4.8 × 10 −6
C)4.4 × 10 −10
D)2.3 × 10 −11
E)4.4 × 10 −18
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77
Farmers who raise cotton once used arsenic acid, H3AsO4, as a defoliant at harvest time. Arsenic acid is a polyprotic acid with K1 = 2.5 × 10−4, K2 = 5.6 × 10−8, and K3 = 3 × 10−13. What is the pH of a 0.500 M solution of arsenic acid?
A)0.85
B)1.96
C)3.90
D)4.51
E)None of these choices are correct.
A)0.85
B)1.96
C)3.90
D)4.51
E)None of these choices are correct.
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78
Aqueous solutions of phosphoric acid and sodium nitrite are combined, and the following equilibrium is established. H3PO4(aq) + NO2(aq)⇄ H2PO4(aq) + HNO2(aq)
The equilibrium constant Kc for this reaction is greater than one. Based on this information, which of the following statements is correct?
A)Phosphoric acid is a weaker acid than nitrous acid.
B)Nitrous acid is a weaker acid than water.
C)The nitrite anion is a weaker base than the dihydrogen phosphate anion.
D)The dihydrogen phosphate anion is a stronger acid than nitrous acid.
E)Phosphoric acid is a stronger acid than nitrous acid.
The equilibrium constant Kc for this reaction is greater than one. Based on this information, which of the following statements is correct?
A)Phosphoric acid is a weaker acid than nitrous acid.
B)Nitrous acid is a weaker acid than water.
C)The nitrite anion is a weaker base than the dihydrogen phosphate anion.
D)The dihydrogen phosphate anion is a stronger acid than nitrous acid.
E)Phosphoric acid is a stronger acid than nitrous acid.
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79
A 1.25 M solution of the weak acid HA is 9.2% dissociated. What is the pH of the solution?
A)0.64
B)0.94
C)1.13
D)2.16
E)None of these choices are correct.
A)0.64
B)0.94
C)1.13
D)2.16
E)None of these choices are correct.
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80
Hydroxylamine, HONH2, readily forms salts such as hydroxylamine hydrochloride which are used as antioxidants in soaps. Hydroxylamine has Kb of 9.1 × 10−9. What is the pH of a 0.025 M HONH2 solution?
A)2.90
B)4.82
C)9.18
D)9.91
E)11.10
A)2.90
B)4.82
C)9.18
D)9.91
E)11.10
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