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General Chemistry Principles
Exam 17: Additional Aspects of Acidbase Equilibria
Path 4
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Question 81
Multiple Choice
What is the pH of a 1.0 M aqueous solution of trisodium phosphate? K
a1
= 7.1 × 10
-3
,K
a2
= 6.3 × 10
-8
, K
a3
= 4.2 × 10
-13
Question 82
Multiple Choice
An aqueous solution of an unknown acid had a pH of 3.70.Titration of a 25.0 mL aliquot of the acid solution required 21.7 mL of 0.104 M aqueous sodium hydroxide for complete reaction.Assuming that the acid is monoprotic,what is its ionization constant?
Question 83
Multiple Choice
What is the pH of the resulting solution if 25.00 mL of 0.10 mol L
-1
aqueous acetic acid is added to 10.00 mL of 0.10 mol L
-1
NaOH(aq) ? Assume that the volumes of the solutions are additive.K
a
= 1.8 × 10
-5
for CH
3
COOH
Question 84
Multiple Choice
A handbook states that to prepare a particular buffer solution mix 39.0 mL of 0.20 M aqueous NaH
2
PO
4
with 61.0 mL of 0.20 M aqueous Na
2
HPO
4
.What will be the pH of this buffer? For phosphoric acid Ka
2
= 6.2 × 10
-8
Question 85
True/False
The common ion in an aqueous solution of a weak acid and a strong acid is the hydronium ion.
Question 86
Multiple Choice
Determine the [C
2
H
3
O
2
-
] of the following aqueous solution.Initial concentrations are given. [HC
2
H
3
O
2
] = 0.250 M,[HI] = 0.120 M K
a
(acetic acid) = 1.8 × 10
-5
Question 87
Multiple Choice
How many millilitres of 0.120 mol L
-1
NaOH(aq) are required to titrate 50.0 mL of 0.0998 mol L
-1
aqueous butanoic acid to the equivalence point? Butanoic acid is monoprotic.The
Of butanoic acid is 1.5 × 10
-5
.
Question 88
Multiple Choice
A weak acid has K
a
= 4.2 × 10
-3
.If [A
-
] = 2.0 M,what must [HA] be so that [H
+
] = 2.1 × 10
-3
M?
Question 89
Multiple Choice
The following compounds are available as 0.10 M aqueous solutions: pyridine (pK
b
= 8.82) ,triethylamine (pK
b
= 3.25) ,HClO
4
,phenol (pK
a
= 9.96) ,HClO (pK
a
= 7.54) ,NH
3
(pK
b
= 4.74) and NaOH.Identify two solutions that could be used to prepare a buffer with a pH of approximately 5.
Question 90
Multiple Choice
What is the pH of an aqueous solution prepared by mixing 50.00 mL of 0.10 mol L
-1
methylamine,CH
3
NH
2
,with 20.00 mL of 0.10 mol L
-1
methylammonium chloride,CH
3
NH
3
Cl? Assume that the volume of the solutions are additive and that K
b
= 3.70 × 10
-4
for methylamine.
Question 91
Multiple Choice
What is the [H
3
O
+
] of an aqueous solution measured to be 0.20 M in sodium acetate and 0.40 M in acetic acid? (K
a
= 1.8 × 10
-5
)
Question 92
Multiple Choice
How many mL of 0.200 M aqueous acetic acid are mixed with 13.2 mL of 0.200 M aqueous sodium acetate to give a buffer with pH = 4.2? (K
a
for acetic acid is 1.8 × 10
-5
)
Question 93
Multiple Choice
What is the pH of a 1.0 M aqueous solution of Na
2
SO
3
? K
a1
= 1.3 × 10
-2
,K
a2
= 6.2 × 10
-8?
Question 94
Multiple Choice
Determine the pH of the following aqueous solution.Initial concentrations are given. [NaCHO
2
] = 0.815 M,[HBr] = 0.105 M,K
a
for HCHO
2
= 1.8 × 10
-4
Question 95
Multiple Choice
If some NH
4
Cl is added to an aqueous solution of NH
3
:
Question 96
Multiple Choice
Twenty-five milliliters of 0.10 M HCl(aq) is titrated with 0.10 M NaOH(aq) .What is the pH after 15 mL of NaOH(aq) has been added?
Question 97
Multiple Choice
What volume in mL of 2.0 M H
2
SO
4
(aq) is needed to neutralize 7.8 g of Al(OH)
3
(78.0 g/mol) ? Al
2
(SO
4
)
3
(aq) and water are the titration products.