Deck 16: Acid-Base and Solubility Equilibria: Reactions in Soil and Water

ملء الشاشة (f)
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سؤال
Which sketch best represents the qualitative molecular view of an aqueous solution of nitrous acid? (Water molecules are not shown explicitly.)

A) <strong>Which sketch best represents the qualitative molecular view of an aqueous solution of nitrous acid? (Water molecules are not shown explicitly.)</strong> A)   B)   C)   D)   <div style=padding-top: 35px>
B) <strong>Which sketch best represents the qualitative molecular view of an aqueous solution of nitrous acid? (Water molecules are not shown explicitly.)</strong> A)   B)   C)   D)   <div style=padding-top: 35px>
C) <strong>Which sketch best represents the qualitative molecular view of an aqueous solution of nitrous acid? (Water molecules are not shown explicitly.)</strong> A)   B)   C)   D)   <div style=padding-top: 35px>
D) <strong>Which sketch best represents the qualitative molecular view of an aqueous solution of nitrous acid? (Water molecules are not shown explicitly.)</strong> A)   B)   C)   D)   <div style=padding-top: 35px>
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سؤال
Which of these is a strong acid that ionizes to make a weak acid?

A) H2SO3
B) H2SO4
C) H3PO4
D) HNO3
E) HCl
سؤال
Ammonia (NH3) acts as a weak base in aqueous solution. What is the acid that reacts with this base when ammonia is dissolved in water?

A) none, there are no acids in pure water
B) H2O
C) NH4+
D) trick question, because no acids are present, ammonia cannot act as a base
E) oxygen that always is dissolved in water
سؤال
In the Brønsted-Lowry definition of acids and bases, a base ________

A) is a proton donor.
B) is a proton acceptor.
C) forms stable hydrogen bonds.
D) breaks stable hydrogen bonds.
E) corrodes metals.
سؤال
Which one of the following is a conjugate acid-base pair?

A) NH3 and NH4+
B) H3O+ and OH-
C) NH2- and NH4+
D) H2O and O2-
E) NaF and F-
سؤال
Which one of the following is not a strong acid?

A) nitric acid, HNO3
B) sulfuric acid, H2SO4
C) carbonic acid, H2CO3
D) hydrochloric acid, HCl
E) perchloric acid, HClO4
سؤال
In the following reaction in aqueous solution, the acid reactant is ________, and its conjugate base product is ________.
CH3NH2 + HSO4- \leftrightarrows
CH3NH3+ + SO42-

A) CH3NH2; CH3NH3+
B) CH3NH2; SO42-
C) HSO4-; CH3NH3+
D) HSO4-; SO42-
E) HSO4-; H3O+
سؤال
Which one of the following is not a conjugate acid-base pair?

A) NH3 and NH2-
B) HNO3 and HNO2
C) HI and I-
D) H2PO4- and HPO42-
E) H2O and OH-
سؤال
The acid ionization equilibrium constant, Ka, describes the reaction (where HA is a generic weak acid):

A) HA + OH- \leftrightarrows H2O + A-
B) HA + H2O \leftrightarrows
H3O+ + A-
C) HA + H3O+ \leftrightarrows
H2A+ + H2O
D) HA + H2A+ \leftrightarrows
H2A+ + HA
E) H3O+ + A- \leftrightarrows
HA + H2O
سؤال
Which sketch best represents the qualitative molecular view of an aqueous solution of nitric acid? (Water molecules are not shown explicitly.)

A) <strong>Which sketch best represents the qualitative molecular view of an aqueous solution of nitric acid? (Water molecules are not shown explicitly.)</strong> A)   B)   C)   D)   <div style=padding-top: 35px>
B) <strong>Which sketch best represents the qualitative molecular view of an aqueous solution of nitric acid? (Water molecules are not shown explicitly.)</strong> A)   B)   C)   D)   <div style=padding-top: 35px>
C) <strong>Which sketch best represents the qualitative molecular view of an aqueous solution of nitric acid? (Water molecules are not shown explicitly.)</strong> A)   B)   C)   D)   <div style=padding-top: 35px>
D) <strong>Which sketch best represents the qualitative molecular view of an aqueous solution of nitric acid? (Water molecules are not shown explicitly.)</strong> A)   B)   C)   D)   <div style=padding-top: 35px>
سؤال
Which one of the following is a conjugate acid-base pair?

A) NaF and F-
B) HNO3 and HNO2
C) HI and I-
D) NH4+ and NH2-
E) H2O and H2O2
سؤال
Which statement about nitrous acid and nitric acid is correct?

A) They are both weak acids.
B) They are both strong acids.
C) They both have one ionizable proton.
D) Nitrous acid has the formula HNO3.
E) Nitric acid has the formula HNO2.
سؤال
In the following reaction in aqueous solution, the acid reactant is ________ and its conjugate base product is ________.
CH3COOH + NH3 \leftrightarrows CH3COO- + NH4+

A) CH3COOH; CH3COO-
B) CH3COOH; NH4+
C) NH3; CH3COO-
D) NH3; NH4+
E) CH3COOH; H3O+
سؤال
Which of the following is the conjugate acid of the hydrogen phosphate ion, HPO42-?

A) H3PO4
B) H2PO4-
C) HPO42-
D) PO43-
E) H3O+
سؤال
Which one of the following is a strong acid?

A) nitrous acid, HNO2
B) sulfurous acid, H2SO3
C) carbonic acid, H2CO3
D) hydrofluoric acid, HF
E) perchloric acid, HClO4
سؤال
In the Brønsted-Lowry definition of acids and bases, an acid ________

A) is a proton donor.
B) is a proton acceptor.
C) forms stable hydrogen bonds.
D) breaks stable hydrogen bonds.
E) corrodes metals.
سؤال
Which of the following compounds cannot be a Brønsted-Lowry base?

A) OH-
B) H2O
C) NH3
D) NH4+
E) SH-
سؤال
Which of the following is a strong acid?

A) HNO3
B) H2S
C) HNO2
D) HCO3-
E) HOCl
سؤال
Which one of the following statements is not correct?

A) A strong acid solution has a higher concentration than a weak acid solution.
B) A strong acid is ionized to a greater extent than a weak acid.
C) Hydrochloric acid is an example of a strong acid.
D) Acetic acid is an example of a weak acid.
E) The pH of a 0.1 M solution of acetic acid is higher than the pH of a 0.1 M solution of hydrochloric acid.
سؤال
Which one of the following is not a conjugate acid-base pair?

A) NH3 and NH4+
B) H3O+ and OH-
C) H2PO4- and HPO42-
D) HS- and H2S
E) NH3 and NH2-
سؤال
Sometimes liquid ammonia, NH3, is used as a solvent rather than water. Which expression defines the ammonia autoionization counterpart of Kw?

A) [H3O+][OH-]
B) [NH3][NH4+]
C) [NH2-][NH4+]
D) [H3O+][NH2-]
E) [NH4+][OH-]
سؤال
Which one of the following is not a strong base?

A) lithium hydroxide, LiOH
B) sodium hydroxide, NaOH
C) potassium hydroxide, KOH
D) calcium hydroxide, Ca(OH)2
E) ammonium hydroxide, NH4OH
سؤال
Solutions of each of the hypothetical acids in the following table are prepared with an initial concentration of 0.100 M. Which of the four solutions will have the lowest pH and be most acidic?  Acid pKaHA4.00HB7.00HC10.00HD11.00\begin{array} { c c } \text { Acid } & \mathbf { p } \boldsymbol { K } _ { \mathbf { a } } \\\mathrm { HA } & 4.00 \\\mathrm { HB } & 7.00 \\\mathrm { HC } & 10.00 \\\mathrm { HD } & 11.00\end{array}

A) HA
B) HB
C) HC
D) HD
E) All will have the same pH because the concentrations are the same.
سؤال
When pure water autoionizes, the following ions are produced: ________

A) O2-, OH-, H3O+, and H2O+.
B) OH- and H3O+.
C) O2- and H4O2+.
D) H+ and OH-.
E) 2H+ and O2-.
سؤال
Three acids found in foods are lactic acid (in milk products), oxalic acid (in rhubarb), and malic
Acid (in apples). The pKa values are LA = 3.88, OA = 1.23, and MA = 3.40. Which list has the conjugate bases of these acids in order of decreasing strength?

A) lactate > oxalate > malate
B) oxalate > malate > lactate
C) lactate > malate > oxalate
D) oxalate > lactate > malate
E) malate > lactate > oxalate
سؤال
Pure water at any temperature has ________

A) a pH less than 7.
B) a pOH more than 7.
C) [H3O+] = [OH-].
D) pH = 7.
E) no hydronium ions in it.
سؤال
If the pH of a solution decreases by 2 units (e.g., from 3 to 1), then the hydronium ion concentration changes by a factor of ________

A) 2.
B) 100.
C) 1/2.
D) 1/100.
E) 1000.
سؤال
The pH of a popular soft drink is 3.4; what is its hydronium ion concentration?

A) 5.0 *10-4 M
B) 4.0 *10-4 M
C) 2.5 * 103 M
D) 1.0 *10-7 M
E) 5.0 *10-5 M
سؤال
Which statement, A-D, is not correct? If all are correct, respond E. Pure water at 25°C has ________

A) Kw = 1.0 *10-14.
B) pOH = 7.
C) [H3O+] = [OH-].
D) pH = 7.
E) A-D are all correct.
سؤال
Which expression defines the autoionization constant for water, Kw?

A) [H3O+][OH-]
B) [H2O][H3O+]
C) [OH-][H2O]
D) [H4O2+][O2-]
E) [H2O][H2O]
سؤال
The base ionization constant Kb describes which of the following reactions for a weak base, B, in aqueous solution?

A) B + H+ \leftrightarrows BH+
B) B + H3O+ \leftrightarrows BH+ + H2O
C) B + H2O \leftrightarrows BH+ + OH-
D) B + OH- \leftrightarrows BH- + O2-
E) BH+ + OH- \leftrightarrows B + H2O
سؤال
A substance that can act as both an acid and base is ________

A) amphibious.
B) amphiprotic.
C) bacidic.
D) androgynous.
E) acibasic.
سؤال
Solutions of sodium salts of the acids in the following table are prepared with an initial concentration of 0.500 M. Which solution will have the highest pH and be the least acidic?  Acid pKa HA 4.00 HB 7.00 HC 10.00 HD 11.00\begin{array} { c c } \text { Acid } & \mathbf { p } K _ { \mathbf { a } } \\\text { HA } & 4.00 \\\text { HB } & 7.00 \\\text { HC } & 10.00 \\\text { HD } & 11.00\end{array}

A) NaA
B) NaB
C) NaC
D) NaD
E) All will have the same pH because the concentrations are the same.
سؤال
Three common weak bases are phosphate (P; PO43-, pKb = 1.3), carbonate (C; CO32-, pKb = 3.7), and acetate (A; CH3COO-, pKb = 9.3). Which response has these bases listed in order of increasing strength?

A) P < C < A
B) C < P < A
C) A < C < P
D) C < A < P
E) P < A < C
سؤال
Use the following acid ionization constants to identify the correct decreasing order of base strengths for the conjugate bases. HFKa=7.2×104\mathrm { HF } \quad K _ { \mathrm { a } } = 7.2 \times 10 ^ { - 4 }
HNO2Ka=4.5×104\mathrm { HNO } _ { 2 } \quad K _ { \mathrm { a } } = 4.5 \times 10 ^ { - 4 }
HCNKa=6.2×1010\mathrm { HCN } \quad K _ { \mathrm { a } } = 6.2 \times 10 ^ { - 10 }

A) CN- > NO2- > F-
B) NO2- > F- > CN-
C) F- > CN- > NO2-
D) F- > NO2- > CN-
E) NO2- > CN- > F-
سؤال
A solution with a pOH of 6.92 has an [OH-] concentration of ________

A) 1.20 * 10-7 M.
B) 9.2 * 10-6 M.
C) 6.8 *10-6 M.
D) 7.08 M.
E) 6.92 M.
سؤال
Which one, A-D, is not related to the water autoionization constant, Kw? If all are related,
Respond E.

A) [H3O+] [OH-]
B) 1.0 *10-14 at 25°C
C) 2 H2O \leftrightarrows H3O+ + OH-
D) pH = 7 at 25°C
E) A-D are all related to Kw.
سؤال
Three acids found in foods are lactic acid (in milk products), oxalic acid (in rhubarb), and malic acid (in apples). The pKa values are LA = 3.88, OA = 1.23, and MA = 3.40. Which list has these acids in order of decreasing acid strength?

A) LA > OA > MA
B) LA > MA > OA
C) OA > MA > LA
D) OA > LA > MA
E) MA > LA > OA
سؤال
When [H+] = 4.0 *10-9 M in water at 25°C, then ________

A) pH = 9.40.
B) pH = 7.00.
C) pH = -8.40.
D) pH = 8.40.
E) pH = -9.40.
سؤال
The hydronium ion concentration of a dilute solution of vinegar is 1.45*10-5. What is the pH of this solution?

A) 5.7
B) -4.8
C) 4.8
D) -5.7
E) 7.0
سؤال
What is the actual concentration of molecular NH3 in a 0.200 M solution of ammonia? The
Kb value for ammonia is 1.80 *10-5.

A) 0.200 M
B) 0.198 M
C) 1.80 * 10-5 M
D) 1.90 * 10-3 M
E) 3.6 *10-6 M
سؤال
The first disinfectant used by Joseph Lister was called carbolic acid. This substance now is known as phenol, C6H5OH (pKa = 10.0). What is the pH of a 0.10 M solution of phenol?

A) 3.5
B) 10.0
C) 6.5
D) 5.5
E) 4.5
سؤال
A solution with a pOH of 4.3 has a [H+] of ________

A) 6.8 * 10-9 M.
B) 3.2 *10-4 M.
C) 4.8 * 10-5 M.
D) 2.0 * 10-10 M.
E) 4.3 M.
سؤال
Boric acid frequently is used as an eyewash to treat eye infections. The pH of a 0.050 M solution of boric acid is 5.28. What is the value of the boric acid ionization constant, Ka?

A) 5.25 * 10-6
B) 5.51*10-10
C) 5.43 * 10-8
D) 5.79 *10-4
E) 5.33* 10-12
سؤال
What is the hydronium ion concentration of a 0.010 M solution of acetic acid? Ka for acetic acid is
1.8 *10-5.

A) 1.8 * 10-3
B) 1.8 * 10-5
C) 1.0 *10-2
D) 1.8 *10-7
E) 4.2 *10-4
سؤال
Butanoic acid contributes to the rancid odor of spoiled butter. Calculate the acid ionization constant for butanoic acid if a 0.155 M solution is 1.15% ionized. The abbreviated structural formula for butanoic acid is CH3CH2CH2COOH.

A) 5.1 *10-3
B) 1.8 * 10-3
C) 1.2 * 10-2
D) 2.1 *10-5
E) 1.5 *10-5
سؤال
What is the pH of a 0.010 M solution of acetic acid? Ka for acetic acid is 1.8 *10-5.

A) 2.74
B) 4.74
C) 2.00
D) 3.37
E) 6.74
سؤال
In evaluating the pH of an aqueous weak acid solution, ________ usually can be ignored.

A) the concentration of the weak acid
B) the concentration of hydronium ion produced by the autoionization of water
C) the reaction of the weak acid with water
D) the concentration of the ionized hydronium ion
E) the concentration of the conjugate base
سؤال
What is the pOH of a 0.20 M solution of ammonia? The Kb value for ammonia is 1.8 * 10-5.

A) 4.44
B) 4.74
C) 0.70
D) 2.72
E) 3.38
سؤال
The acidic ingredient in vinegar is acetic acid. The pH of vinegar is around 2.4, and the molar concentration of acetic acid in vinegar is around 0.85 M. Based on this information, determine the value of the acid ionization constant, Ka, for acetic acid.

A) 2.5 * 10-5
B) 5.0 *10-5
C) 4.7 * 10-3
D) 1.9 *10-5
E) 7.4 *10-3
سؤال
When values of Ka are small (e.g., 1 *10-5) and concentrations of weak acids [HA] are relatively large (e.g., 0.10 M), the hydronium ion concentration of the solution can be calculated using which expression?

A) [H+] = Ka
B) [H+] = Ka[HA]
C) [H+] = (Ka[HA])1/2
D) [H+] = KaKb[HA]
E) [H+] = Ka[HA]/[A-]
سؤال
What is the concentration of [OH-] in a 0.20 M solution of ammonia? The Kb value for ammonia is
1.8 *10-5.

A) 3.6 *10-6 M
B) 1.8 *10-5 M
C) 0.20 M
D) 1.9 * 10-3 M
E) 4.2 *10-4 M
سؤال
When [H+] = 1.0 *10-7 M in water at 25°C, then ________

A) pH =1.
B) pH =10 10-7.
C) [OH-] =1.0 *10-7 M.
D) [OH-]= 1.0 *107 M.
E) [OH-] =0 M.
سؤال
A cup of coffee has a hydroxide ion concentration of 1.0 *10-10 M. What is the pH of this coffee?

A) 1.0 *10-4
B) 4
C) 10
D) 7
E) -10
سؤال
A solution with a pH of 9.50 has a pOH of ________

A) 9.50.
B) 0.50.
C) 4.50.
D) 23.5.
E) 19.0.
سؤال
Bert and Ernie were determining the pH of their goldfish's water. Bert's pH meter was in the fix-it shop, so Ernie used his pOH meter instead. Ernie insisted that he could use the reading to calculate the pH by simple addition or subtraction that he learned in second grade, but Bert (showing off as usual) claimed that the calculation involved finding an antilogarithm, dividing, and then finding a logarithm. This would make use of all the math he learned in third grade. Who is right?

A) Ernie
B) Bert
C) both
D) neither
سؤال
What is the pH of a 0.500 M solution of trimethylamine (pKb = 4.13)?

A) 2.22
B) 11.8
C) 0.00609
D) 4.42
E) 5.91
سؤال
The concentration of acetic acid (pKa = 4.75) in vinegar is about 1.0 M. With this information, what do you predict the pH of vinegar to be?

A) 4.75
B) 2.4
C) 4.0 *10-3
D) 7.0
E) 5.35
سؤال
A 0.100 M solution of a monoprotic weak acid has a pH of 3.00. What is the pKa of this acid?

A) 5.00
B) 0.999
C) 3.00
D) 9.99
E) 6.00
سؤال
What is the actual concentration of the molecular form of HF in a 1.0 M HF solution given that
Ka of HF is 6.8 * 10-4?

A) 2.6 *10-2 M
B) 0.97 M
C) 1.59 M
D) 6.8 * 10-4 M
E) 1.0 M
سؤال
Sodium hypochlorite is a common ingredient in household bleach. What is the pH of this bleach if
It contains 5% NaOCl by mass? (pKa of HOCl = 7.46)

A) 9
B) 11
C) 4
D) 8
E) 7
سؤال
Identify the weakest and strongest acids in the group below. The weakest acid is listed first in the responses.
H2O, H2S, H2Se

A) H2Se < H2S
B) H2Se < H2O
C) H2S < H2Se
D) H2O < H2Se
E) H2O < H2S
سؤال
In each of the following, the stronger acid is identified and an explanation is given. All except one are correct statements. Which one is not correct?

A) HCl > HF because the HF bond energy is larger than the HCl bond energy.
B) HCO3- > H2CO3 because the negative charge stabilizes the loss of a proton.
C) CCl3COOH > CH3COOH because electronegative substituents stabilize the conjugate base.
D) HBrO3 > HBrO2 because of the additional electronegative oxygen atom.
E) ClOH > BrOH because Cl is more electronegative than Br.
سؤال
Which ending to the statement is not correct? The weak acid HY will be stronger than the weak acid HZ if ________

A) more Lewis resonance structures can be written for the Y group than for the Z group.
B) Y is more electronegative than Z.
C) the Y group has more oxygen atoms than the Z group.
D) the H______Y bond is weaker than the H___Z bond and other things are about the same.
E) the Y group contains Br rather than Cl, which is in the Z group.
سؤال
Which one of the following statements is not correct?

A) HIO is a stronger acid than HClO.
B) HClO is a stronger acid than HBrO.
C) HClO3 is a stronger acid than HClO2.
D) HPO42- is a weaker acid than H2PO4-.
E) H2SO4 is a stronger acid than H2SO3.
سؤال
The degree of ionization of a strong acid is ________

A) dependent on the concentration of the acid.
B) between 1 and 10%.
C) between 10 and 100%.
D) 100%.
E) dependent on which strong acid it is.
سؤال
Identify the weakest and strongest acids in the group below. The weakest acid is listed first in the responses.
HClO4, HClO2, HClO3

A) HClO4 < HClO2
B) HClO4 < HClO3
C) HClO2 < HClO3
D) HClO2 < HClO4
E) HClO3 < HClO4
سؤال
What is the hydronium ion concentration of a 0.20 M solution of ammonia? The Kb value for ammonia is 1.8 *10-5.

A) 2.8 *10-10
B) 5.5 *10-10
C) 1.8 *10-5
D) 5.2 *10-12
E) 1.9 *10-3
سؤال
Identify the weakest and strongest acids in the group below. The weakest acid is listed first in the responses.
H2Te, H2S, H2Se

A) H2Se < H2S
B) H2S < H2Te
C) H2S < H2Se
D) H2Te < H2Se
E) H2Te < H2S
سؤال
Identify the weakest and strongest acids in the group below. The weakest acid is listed first in the responses.
HOCl, HOBr, HOI

A) HOBr < HOCl
B) HOBr < HOI
C) HOCl < HOBr
D) HOCl < HOI
E) HOI < HOCl
سؤال
Identify the weakest and strongest acids in the group below. The weakest acid is listed first in the responses.
HCl, H2S, PH3

A) HCl < H2S
B) HCl < PH3
C) H2S < HCl
D) H2S < PH3
E) PH3 < HCl
سؤال
What is the pH of a 0.20 M solution of ammonia? The Kb value for ammonia is 1.8 * 10-5.

A) 9.56
B) 9.26
C) 4.74
D) 11.28
E) 2.72
سؤال
The degree of ionization of a weak acid ________
I. varies with the concentration of the acid.
II. depends on which weak acid it is.
III. is 100%.
IV. is greater than 50% but less than 100%.

A) I only
B) II only
C) III only
D) both I and II
E) IV only
سؤال
The analysis label on a 500 mL bottle of Fiji natural artesian water reports pH = 7.5 and 140 mg of bicarbonates, HCO3-. Calculate the pH expected as a result of the bicarbonates to see if these two numbers are consistent with each other. (Kb = 2.4 * 10-8 for HCO3-)

A) 7.5
B) 5.0
C) 9.6
D) 4.4
E) 9.0
سؤال
Identify the weakest and strongest acids in the group below. The weakest acid is listed first in the responses.
HClO, HClO2, HClO3

A) HClO < HClO2
B) HClO < HClO3
C) HClO2 < HClO3
D) HClO2 < HClO
E) HClO3 < HClO
سؤال
The degree of ionization ________

A) increases with increasing concentration of a weak acid.
B) decreases with increasing concentration of a weak acid.
C) does not change with changing concentration of a weak acid.
D) is not related to the concentration of a weak acid.
E) is independent of the composition of the weak acid.
سؤال
Vitamin C, which is ascorbic acid, is a diprotic acid with pKa1\mathrm { p } K _ { \mathrm { a }_{1} } = 5.00 and pKs2\mathrm { p } K _ { \mathrm { s }_{2} }
= 11.3. What is
The pH of a 0.125 M solution of ascorbic acid?

A) 2.95
B) 3.05
C) 5.00
D) 6.10
E) 3.54
سؤال
A solution of the weak acid HF and a solution of the strong acid HCl have the same pH. Which solution will require the most sodium hydroxide, NaOH, to neutralize?

A) HCl, because it is a strong acid and dissociates completely.
B) HF, because its concentration is larger.
C) Both will require the same amount because the concentrations are equal.
D) Both will require the same amount because the H3O+ concentrations are the same.
E) HCl, because the stronger acid has the higher concentration.
سؤال
Identify the weakest and strongest acids in the group below. The weakest acid is listed first in the responses.
HCl, HBr, HI

A) HCl < HI
B) HCl < HBr
C) HBr < HCl
D) HBr < HI
E) HI < HCl
سؤال
The pH of vinegar is 2.4, and the acetic acid in vinegar has a concentration of about 0.85 M. The pKa of acetic acid is 4.75. What is the percent ionization of acetic acid in vinegar?

A) 2.8%
B) 4.7%
C) 0.47%
D) 0.21%
E) 0.021%
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Deck 16: Acid-Base and Solubility Equilibria: Reactions in Soil and Water
1
Which sketch best represents the qualitative molecular view of an aqueous solution of nitrous acid? (Water molecules are not shown explicitly.)

A) <strong>Which sketch best represents the qualitative molecular view of an aqueous solution of nitrous acid? (Water molecules are not shown explicitly.)</strong> A)   B)   C)   D)
B) <strong>Which sketch best represents the qualitative molecular view of an aqueous solution of nitrous acid? (Water molecules are not shown explicitly.)</strong> A)   B)   C)   D)
C) <strong>Which sketch best represents the qualitative molecular view of an aqueous solution of nitrous acid? (Water molecules are not shown explicitly.)</strong> A)   B)   C)   D)
D) <strong>Which sketch best represents the qualitative molecular view of an aqueous solution of nitrous acid? (Water molecules are not shown explicitly.)</strong> A)   B)   C)   D)
2
Which of these is a strong acid that ionizes to make a weak acid?

A) H2SO3
B) H2SO4
C) H3PO4
D) HNO3
E) HCl
H2SO4
3
Ammonia (NH3) acts as a weak base in aqueous solution. What is the acid that reacts with this base when ammonia is dissolved in water?

A) none, there are no acids in pure water
B) H2O
C) NH4+
D) trick question, because no acids are present, ammonia cannot act as a base
E) oxygen that always is dissolved in water
H2O
4
In the Brønsted-Lowry definition of acids and bases, a base ________

A) is a proton donor.
B) is a proton acceptor.
C) forms stable hydrogen bonds.
D) breaks stable hydrogen bonds.
E) corrodes metals.
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5
Which one of the following is a conjugate acid-base pair?

A) NH3 and NH4+
B) H3O+ and OH-
C) NH2- and NH4+
D) H2O and O2-
E) NaF and F-
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6
Which one of the following is not a strong acid?

A) nitric acid, HNO3
B) sulfuric acid, H2SO4
C) carbonic acid, H2CO3
D) hydrochloric acid, HCl
E) perchloric acid, HClO4
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7
In the following reaction in aqueous solution, the acid reactant is ________, and its conjugate base product is ________.
CH3NH2 + HSO4- \leftrightarrows
CH3NH3+ + SO42-

A) CH3NH2; CH3NH3+
B) CH3NH2; SO42-
C) HSO4-; CH3NH3+
D) HSO4-; SO42-
E) HSO4-; H3O+
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8
Which one of the following is not a conjugate acid-base pair?

A) NH3 and NH2-
B) HNO3 and HNO2
C) HI and I-
D) H2PO4- and HPO42-
E) H2O and OH-
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9
The acid ionization equilibrium constant, Ka, describes the reaction (where HA is a generic weak acid):

A) HA + OH- \leftrightarrows H2O + A-
B) HA + H2O \leftrightarrows
H3O+ + A-
C) HA + H3O+ \leftrightarrows
H2A+ + H2O
D) HA + H2A+ \leftrightarrows
H2A+ + HA
E) H3O+ + A- \leftrightarrows
HA + H2O
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10
Which sketch best represents the qualitative molecular view of an aqueous solution of nitric acid? (Water molecules are not shown explicitly.)

A) <strong>Which sketch best represents the qualitative molecular view of an aqueous solution of nitric acid? (Water molecules are not shown explicitly.)</strong> A)   B)   C)   D)
B) <strong>Which sketch best represents the qualitative molecular view of an aqueous solution of nitric acid? (Water molecules are not shown explicitly.)</strong> A)   B)   C)   D)
C) <strong>Which sketch best represents the qualitative molecular view of an aqueous solution of nitric acid? (Water molecules are not shown explicitly.)</strong> A)   B)   C)   D)
D) <strong>Which sketch best represents the qualitative molecular view of an aqueous solution of nitric acid? (Water molecules are not shown explicitly.)</strong> A)   B)   C)   D)
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11
Which one of the following is a conjugate acid-base pair?

A) NaF and F-
B) HNO3 and HNO2
C) HI and I-
D) NH4+ and NH2-
E) H2O and H2O2
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12
Which statement about nitrous acid and nitric acid is correct?

A) They are both weak acids.
B) They are both strong acids.
C) They both have one ionizable proton.
D) Nitrous acid has the formula HNO3.
E) Nitric acid has the formula HNO2.
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13
In the following reaction in aqueous solution, the acid reactant is ________ and its conjugate base product is ________.
CH3COOH + NH3 \leftrightarrows CH3COO- + NH4+

A) CH3COOH; CH3COO-
B) CH3COOH; NH4+
C) NH3; CH3COO-
D) NH3; NH4+
E) CH3COOH; H3O+
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14
Which of the following is the conjugate acid of the hydrogen phosphate ion, HPO42-?

A) H3PO4
B) H2PO4-
C) HPO42-
D) PO43-
E) H3O+
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15
Which one of the following is a strong acid?

A) nitrous acid, HNO2
B) sulfurous acid, H2SO3
C) carbonic acid, H2CO3
D) hydrofluoric acid, HF
E) perchloric acid, HClO4
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16
In the Brønsted-Lowry definition of acids and bases, an acid ________

A) is a proton donor.
B) is a proton acceptor.
C) forms stable hydrogen bonds.
D) breaks stable hydrogen bonds.
E) corrodes metals.
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17
Which of the following compounds cannot be a Brønsted-Lowry base?

A) OH-
B) H2O
C) NH3
D) NH4+
E) SH-
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18
Which of the following is a strong acid?

A) HNO3
B) H2S
C) HNO2
D) HCO3-
E) HOCl
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19
Which one of the following statements is not correct?

A) A strong acid solution has a higher concentration than a weak acid solution.
B) A strong acid is ionized to a greater extent than a weak acid.
C) Hydrochloric acid is an example of a strong acid.
D) Acetic acid is an example of a weak acid.
E) The pH of a 0.1 M solution of acetic acid is higher than the pH of a 0.1 M solution of hydrochloric acid.
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20
Which one of the following is not a conjugate acid-base pair?

A) NH3 and NH4+
B) H3O+ and OH-
C) H2PO4- and HPO42-
D) HS- and H2S
E) NH3 and NH2-
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21
Sometimes liquid ammonia, NH3, is used as a solvent rather than water. Which expression defines the ammonia autoionization counterpart of Kw?

A) [H3O+][OH-]
B) [NH3][NH4+]
C) [NH2-][NH4+]
D) [H3O+][NH2-]
E) [NH4+][OH-]
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22
Which one of the following is not a strong base?

A) lithium hydroxide, LiOH
B) sodium hydroxide, NaOH
C) potassium hydroxide, KOH
D) calcium hydroxide, Ca(OH)2
E) ammonium hydroxide, NH4OH
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23
Solutions of each of the hypothetical acids in the following table are prepared with an initial concentration of 0.100 M. Which of the four solutions will have the lowest pH and be most acidic?  Acid pKaHA4.00HB7.00HC10.00HD11.00\begin{array} { c c } \text { Acid } & \mathbf { p } \boldsymbol { K } _ { \mathbf { a } } \\\mathrm { HA } & 4.00 \\\mathrm { HB } & 7.00 \\\mathrm { HC } & 10.00 \\\mathrm { HD } & 11.00\end{array}

A) HA
B) HB
C) HC
D) HD
E) All will have the same pH because the concentrations are the same.
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24
When pure water autoionizes, the following ions are produced: ________

A) O2-, OH-, H3O+, and H2O+.
B) OH- and H3O+.
C) O2- and H4O2+.
D) H+ and OH-.
E) 2H+ and O2-.
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25
Three acids found in foods are lactic acid (in milk products), oxalic acid (in rhubarb), and malic
Acid (in apples). The pKa values are LA = 3.88, OA = 1.23, and MA = 3.40. Which list has the conjugate bases of these acids in order of decreasing strength?

A) lactate > oxalate > malate
B) oxalate > malate > lactate
C) lactate > malate > oxalate
D) oxalate > lactate > malate
E) malate > lactate > oxalate
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26
Pure water at any temperature has ________

A) a pH less than 7.
B) a pOH more than 7.
C) [H3O+] = [OH-].
D) pH = 7.
E) no hydronium ions in it.
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27
If the pH of a solution decreases by 2 units (e.g., from 3 to 1), then the hydronium ion concentration changes by a factor of ________

A) 2.
B) 100.
C) 1/2.
D) 1/100.
E) 1000.
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28
The pH of a popular soft drink is 3.4; what is its hydronium ion concentration?

A) 5.0 *10-4 M
B) 4.0 *10-4 M
C) 2.5 * 103 M
D) 1.0 *10-7 M
E) 5.0 *10-5 M
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29
Which statement, A-D, is not correct? If all are correct, respond E. Pure water at 25°C has ________

A) Kw = 1.0 *10-14.
B) pOH = 7.
C) [H3O+] = [OH-].
D) pH = 7.
E) A-D are all correct.
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30
Which expression defines the autoionization constant for water, Kw?

A) [H3O+][OH-]
B) [H2O][H3O+]
C) [OH-][H2O]
D) [H4O2+][O2-]
E) [H2O][H2O]
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31
The base ionization constant Kb describes which of the following reactions for a weak base, B, in aqueous solution?

A) B + H+ \leftrightarrows BH+
B) B + H3O+ \leftrightarrows BH+ + H2O
C) B + H2O \leftrightarrows BH+ + OH-
D) B + OH- \leftrightarrows BH- + O2-
E) BH+ + OH- \leftrightarrows B + H2O
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32
A substance that can act as both an acid and base is ________

A) amphibious.
B) amphiprotic.
C) bacidic.
D) androgynous.
E) acibasic.
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33
Solutions of sodium salts of the acids in the following table are prepared with an initial concentration of 0.500 M. Which solution will have the highest pH and be the least acidic?  Acid pKa HA 4.00 HB 7.00 HC 10.00 HD 11.00\begin{array} { c c } \text { Acid } & \mathbf { p } K _ { \mathbf { a } } \\\text { HA } & 4.00 \\\text { HB } & 7.00 \\\text { HC } & 10.00 \\\text { HD } & 11.00\end{array}

A) NaA
B) NaB
C) NaC
D) NaD
E) All will have the same pH because the concentrations are the same.
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34
Three common weak bases are phosphate (P; PO43-, pKb = 1.3), carbonate (C; CO32-, pKb = 3.7), and acetate (A; CH3COO-, pKb = 9.3). Which response has these bases listed in order of increasing strength?

A) P < C < A
B) C < P < A
C) A < C < P
D) C < A < P
E) P < A < C
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35
Use the following acid ionization constants to identify the correct decreasing order of base strengths for the conjugate bases. HFKa=7.2×104\mathrm { HF } \quad K _ { \mathrm { a } } = 7.2 \times 10 ^ { - 4 }
HNO2Ka=4.5×104\mathrm { HNO } _ { 2 } \quad K _ { \mathrm { a } } = 4.5 \times 10 ^ { - 4 }
HCNKa=6.2×1010\mathrm { HCN } \quad K _ { \mathrm { a } } = 6.2 \times 10 ^ { - 10 }

A) CN- > NO2- > F-
B) NO2- > F- > CN-
C) F- > CN- > NO2-
D) F- > NO2- > CN-
E) NO2- > CN- > F-
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36
A solution with a pOH of 6.92 has an [OH-] concentration of ________

A) 1.20 * 10-7 M.
B) 9.2 * 10-6 M.
C) 6.8 *10-6 M.
D) 7.08 M.
E) 6.92 M.
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37
Which one, A-D, is not related to the water autoionization constant, Kw? If all are related,
Respond E.

A) [H3O+] [OH-]
B) 1.0 *10-14 at 25°C
C) 2 H2O \leftrightarrows H3O+ + OH-
D) pH = 7 at 25°C
E) A-D are all related to Kw.
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38
Three acids found in foods are lactic acid (in milk products), oxalic acid (in rhubarb), and malic acid (in apples). The pKa values are LA = 3.88, OA = 1.23, and MA = 3.40. Which list has these acids in order of decreasing acid strength?

A) LA > OA > MA
B) LA > MA > OA
C) OA > MA > LA
D) OA > LA > MA
E) MA > LA > OA
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39
When [H+] = 4.0 *10-9 M in water at 25°C, then ________

A) pH = 9.40.
B) pH = 7.00.
C) pH = -8.40.
D) pH = 8.40.
E) pH = -9.40.
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40
The hydronium ion concentration of a dilute solution of vinegar is 1.45*10-5. What is the pH of this solution?

A) 5.7
B) -4.8
C) 4.8
D) -5.7
E) 7.0
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41
What is the actual concentration of molecular NH3 in a 0.200 M solution of ammonia? The
Kb value for ammonia is 1.80 *10-5.

A) 0.200 M
B) 0.198 M
C) 1.80 * 10-5 M
D) 1.90 * 10-3 M
E) 3.6 *10-6 M
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42
The first disinfectant used by Joseph Lister was called carbolic acid. This substance now is known as phenol, C6H5OH (pKa = 10.0). What is the pH of a 0.10 M solution of phenol?

A) 3.5
B) 10.0
C) 6.5
D) 5.5
E) 4.5
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43
A solution with a pOH of 4.3 has a [H+] of ________

A) 6.8 * 10-9 M.
B) 3.2 *10-4 M.
C) 4.8 * 10-5 M.
D) 2.0 * 10-10 M.
E) 4.3 M.
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44
Boric acid frequently is used as an eyewash to treat eye infections. The pH of a 0.050 M solution of boric acid is 5.28. What is the value of the boric acid ionization constant, Ka?

A) 5.25 * 10-6
B) 5.51*10-10
C) 5.43 * 10-8
D) 5.79 *10-4
E) 5.33* 10-12
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45
What is the hydronium ion concentration of a 0.010 M solution of acetic acid? Ka for acetic acid is
1.8 *10-5.

A) 1.8 * 10-3
B) 1.8 * 10-5
C) 1.0 *10-2
D) 1.8 *10-7
E) 4.2 *10-4
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46
Butanoic acid contributes to the rancid odor of spoiled butter. Calculate the acid ionization constant for butanoic acid if a 0.155 M solution is 1.15% ionized. The abbreviated structural formula for butanoic acid is CH3CH2CH2COOH.

A) 5.1 *10-3
B) 1.8 * 10-3
C) 1.2 * 10-2
D) 2.1 *10-5
E) 1.5 *10-5
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47
What is the pH of a 0.010 M solution of acetic acid? Ka for acetic acid is 1.8 *10-5.

A) 2.74
B) 4.74
C) 2.00
D) 3.37
E) 6.74
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48
In evaluating the pH of an aqueous weak acid solution, ________ usually can be ignored.

A) the concentration of the weak acid
B) the concentration of hydronium ion produced by the autoionization of water
C) the reaction of the weak acid with water
D) the concentration of the ionized hydronium ion
E) the concentration of the conjugate base
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49
What is the pOH of a 0.20 M solution of ammonia? The Kb value for ammonia is 1.8 * 10-5.

A) 4.44
B) 4.74
C) 0.70
D) 2.72
E) 3.38
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50
The acidic ingredient in vinegar is acetic acid. The pH of vinegar is around 2.4, and the molar concentration of acetic acid in vinegar is around 0.85 M. Based on this information, determine the value of the acid ionization constant, Ka, for acetic acid.

A) 2.5 * 10-5
B) 5.0 *10-5
C) 4.7 * 10-3
D) 1.9 *10-5
E) 7.4 *10-3
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51
When values of Ka are small (e.g., 1 *10-5) and concentrations of weak acids [HA] are relatively large (e.g., 0.10 M), the hydronium ion concentration of the solution can be calculated using which expression?

A) [H+] = Ka
B) [H+] = Ka[HA]
C) [H+] = (Ka[HA])1/2
D) [H+] = KaKb[HA]
E) [H+] = Ka[HA]/[A-]
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52
What is the concentration of [OH-] in a 0.20 M solution of ammonia? The Kb value for ammonia is
1.8 *10-5.

A) 3.6 *10-6 M
B) 1.8 *10-5 M
C) 0.20 M
D) 1.9 * 10-3 M
E) 4.2 *10-4 M
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53
When [H+] = 1.0 *10-7 M in water at 25°C, then ________

A) pH =1.
B) pH =10 10-7.
C) [OH-] =1.0 *10-7 M.
D) [OH-]= 1.0 *107 M.
E) [OH-] =0 M.
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54
A cup of coffee has a hydroxide ion concentration of 1.0 *10-10 M. What is the pH of this coffee?

A) 1.0 *10-4
B) 4
C) 10
D) 7
E) -10
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55
A solution with a pH of 9.50 has a pOH of ________

A) 9.50.
B) 0.50.
C) 4.50.
D) 23.5.
E) 19.0.
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56
Bert and Ernie were determining the pH of their goldfish's water. Bert's pH meter was in the fix-it shop, so Ernie used his pOH meter instead. Ernie insisted that he could use the reading to calculate the pH by simple addition or subtraction that he learned in second grade, but Bert (showing off as usual) claimed that the calculation involved finding an antilogarithm, dividing, and then finding a logarithm. This would make use of all the math he learned in third grade. Who is right?

A) Ernie
B) Bert
C) both
D) neither
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57
What is the pH of a 0.500 M solution of trimethylamine (pKb = 4.13)?

A) 2.22
B) 11.8
C) 0.00609
D) 4.42
E) 5.91
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58
The concentration of acetic acid (pKa = 4.75) in vinegar is about 1.0 M. With this information, what do you predict the pH of vinegar to be?

A) 4.75
B) 2.4
C) 4.0 *10-3
D) 7.0
E) 5.35
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59
A 0.100 M solution of a monoprotic weak acid has a pH of 3.00. What is the pKa of this acid?

A) 5.00
B) 0.999
C) 3.00
D) 9.99
E) 6.00
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60
What is the actual concentration of the molecular form of HF in a 1.0 M HF solution given that
Ka of HF is 6.8 * 10-4?

A) 2.6 *10-2 M
B) 0.97 M
C) 1.59 M
D) 6.8 * 10-4 M
E) 1.0 M
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61
Sodium hypochlorite is a common ingredient in household bleach. What is the pH of this bleach if
It contains 5% NaOCl by mass? (pKa of HOCl = 7.46)

A) 9
B) 11
C) 4
D) 8
E) 7
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62
Identify the weakest and strongest acids in the group below. The weakest acid is listed first in the responses.
H2O, H2S, H2Se

A) H2Se < H2S
B) H2Se < H2O
C) H2S < H2Se
D) H2O < H2Se
E) H2O < H2S
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63
In each of the following, the stronger acid is identified and an explanation is given. All except one are correct statements. Which one is not correct?

A) HCl > HF because the HF bond energy is larger than the HCl bond energy.
B) HCO3- > H2CO3 because the negative charge stabilizes the loss of a proton.
C) CCl3COOH > CH3COOH because electronegative substituents stabilize the conjugate base.
D) HBrO3 > HBrO2 because of the additional electronegative oxygen atom.
E) ClOH > BrOH because Cl is more electronegative than Br.
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64
Which ending to the statement is not correct? The weak acid HY will be stronger than the weak acid HZ if ________

A) more Lewis resonance structures can be written for the Y group than for the Z group.
B) Y is more electronegative than Z.
C) the Y group has more oxygen atoms than the Z group.
D) the H______Y bond is weaker than the H___Z bond and other things are about the same.
E) the Y group contains Br rather than Cl, which is in the Z group.
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65
Which one of the following statements is not correct?

A) HIO is a stronger acid than HClO.
B) HClO is a stronger acid than HBrO.
C) HClO3 is a stronger acid than HClO2.
D) HPO42- is a weaker acid than H2PO4-.
E) H2SO4 is a stronger acid than H2SO3.
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66
The degree of ionization of a strong acid is ________

A) dependent on the concentration of the acid.
B) between 1 and 10%.
C) between 10 and 100%.
D) 100%.
E) dependent on which strong acid it is.
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67
Identify the weakest and strongest acids in the group below. The weakest acid is listed first in the responses.
HClO4, HClO2, HClO3

A) HClO4 < HClO2
B) HClO4 < HClO3
C) HClO2 < HClO3
D) HClO2 < HClO4
E) HClO3 < HClO4
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68
What is the hydronium ion concentration of a 0.20 M solution of ammonia? The Kb value for ammonia is 1.8 *10-5.

A) 2.8 *10-10
B) 5.5 *10-10
C) 1.8 *10-5
D) 5.2 *10-12
E) 1.9 *10-3
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69
Identify the weakest and strongest acids in the group below. The weakest acid is listed first in the responses.
H2Te, H2S, H2Se

A) H2Se < H2S
B) H2S < H2Te
C) H2S < H2Se
D) H2Te < H2Se
E) H2Te < H2S
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70
Identify the weakest and strongest acids in the group below. The weakest acid is listed first in the responses.
HOCl, HOBr, HOI

A) HOBr < HOCl
B) HOBr < HOI
C) HOCl < HOBr
D) HOCl < HOI
E) HOI < HOCl
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71
Identify the weakest and strongest acids in the group below. The weakest acid is listed first in the responses.
HCl, H2S, PH3

A) HCl < H2S
B) HCl < PH3
C) H2S < HCl
D) H2S < PH3
E) PH3 < HCl
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72
What is the pH of a 0.20 M solution of ammonia? The Kb value for ammonia is 1.8 * 10-5.

A) 9.56
B) 9.26
C) 4.74
D) 11.28
E) 2.72
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73
The degree of ionization of a weak acid ________
I. varies with the concentration of the acid.
II. depends on which weak acid it is.
III. is 100%.
IV. is greater than 50% but less than 100%.

A) I only
B) II only
C) III only
D) both I and II
E) IV only
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74
The analysis label on a 500 mL bottle of Fiji natural artesian water reports pH = 7.5 and 140 mg of bicarbonates, HCO3-. Calculate the pH expected as a result of the bicarbonates to see if these two numbers are consistent with each other. (Kb = 2.4 * 10-8 for HCO3-)

A) 7.5
B) 5.0
C) 9.6
D) 4.4
E) 9.0
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75
Identify the weakest and strongest acids in the group below. The weakest acid is listed first in the responses.
HClO, HClO2, HClO3

A) HClO < HClO2
B) HClO < HClO3
C) HClO2 < HClO3
D) HClO2 < HClO
E) HClO3 < HClO
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76
The degree of ionization ________

A) increases with increasing concentration of a weak acid.
B) decreases with increasing concentration of a weak acid.
C) does not change with changing concentration of a weak acid.
D) is not related to the concentration of a weak acid.
E) is independent of the composition of the weak acid.
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77
Vitamin C, which is ascorbic acid, is a diprotic acid with pKa1\mathrm { p } K _ { \mathrm { a }_{1} } = 5.00 and pKs2\mathrm { p } K _ { \mathrm { s }_{2} }
= 11.3. What is
The pH of a 0.125 M solution of ascorbic acid?

A) 2.95
B) 3.05
C) 5.00
D) 6.10
E) 3.54
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78
A solution of the weak acid HF and a solution of the strong acid HCl have the same pH. Which solution will require the most sodium hydroxide, NaOH, to neutralize?

A) HCl, because it is a strong acid and dissociates completely.
B) HF, because its concentration is larger.
C) Both will require the same amount because the concentrations are equal.
D) Both will require the same amount because the H3O+ concentrations are the same.
E) HCl, because the stronger acid has the higher concentration.
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79
Identify the weakest and strongest acids in the group below. The weakest acid is listed first in the responses.
HCl, HBr, HI

A) HCl < HI
B) HCl < HBr
C) HBr < HCl
D) HBr < HI
E) HI < HCl
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80
The pH of vinegar is 2.4, and the acetic acid in vinegar has a concentration of about 0.85 M. The pKa of acetic acid is 4.75. What is the percent ionization of acetic acid in vinegar?

A) 2.8%
B) 4.7%
C) 0.47%
D) 0.21%
E) 0.021%
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