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Chemistry
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General Chemistry Study Set 1
Quiz 18: Solubility and Complex-Ion Equilibria
Path 4
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Question 41
Multiple Choice
When 100 mL each of 2.0 × 10
-6
M Ag+ and 2.0 × 10
-3
M Br- are mixed, what is the remaining Ag+ ion concentration and is precipitation complete? The solubility product constant of AgBr is 5.0 × 10
-13
.
Question 42
Multiple Choice
What is the free Ag
+
concentration of 0.020 M Ag
+
solution mixed with an equal volume of 2.0 M NH
3
? Kf for [Ag(NH
3
)
2
]
+
is 1.6 × 10
7
.
Question 43
Multiple Choice
When equal volumes of the indicated solutions are mixed, precipitation should occur only for:
barium fluoride 1.0 × 10
-6
calcium carbonate 2.8 × 10
-9
Calcium fluoride 5.3 × 10
-9
Magnesium fluoride 3.7 × 10
-9
Silver carbonate 8.5 × 10-12
Question 44
Multiple Choice
If iron(III) acetate is added to be 1 × 10
-10
M in a solution that is 0.10 M NH
3
, what is Qsp and will Fe(OH)
3
precipitate? The Ksp of Fe(OH)
3
is 4 × 10
-38
and Kb for NH
3
is 1.8 × 10
-5
.
Question 45
Multiple Choice
In which of the following one molar solutions would you expect cadmium sulfide, CdS, to be the most soluble?
Question 46
Multiple Choice
When 100 mL each of 2.0 × 10
-4
M Ca
2+
and 2.0 × 10
-2
M F- are mixed, what is the remaining Ca
2+
ion concentration and is precipitation complete? The solubility product constant of CaF
2
is 5.3 × 10
-9
.
Question 47
Multiple Choice
What is the approximate concentration of free Fe
3+
ion in a solution prepared by mixing equal volumes of 0.06 M Fe
3+
and 4.0 M F- solutions? [The net formation constant for FeF
5
(H
2
O)
2
-
is 2.0 × 10
15
.]
Question 48
Multiple Choice
To a saturated solution of barium carbonate is added just enough sodium sulfate to achieve a maximum sulfate concentration without precipitation of barium sulfate. If no complexes form and the "salt effect" is negligible, what is the concentration of the sulfate ion in this solution? [Ksp for barium carbonate is 1.6 × 10
-9
; Ksp for barium sulfate is 7.9 × 10
-11
]
Question 49
Multiple Choice
Consider an aqueous solution which is 0.020 M in Pb2+ and 0.20 M in Ag+. Concentrated potassium iodide solution (so that volume changes may be neglected) is added gradually with good stirring to this solution. Eventually the iodide ion concentration should increase enough to cause precipitation of the second ion. What will be the concentration of the ion that precipitates first when the second ion just begins to precipitate?
Question 50
Multiple Choice
If chromium(III) chloride is added to be 1 × 10
-12
M in a solution that is 0.10 M NH
3
, what is Qsp and will Cr(OH)
3
precipitate? The Ksp of Cr(OH)
3
is 6.3 × 10
-31
and Kb for NH
3
is 1.8 × 10
-5
.
Question 51
Multiple Choice
The solubility product constant of Mg(OH)
2
is 9.0 × 10
-12
. If a solution is 0.010 M with respect to Mg
2+
ion, the amount of [OH-] required to start the precipitation of Mg(OH)
2
is: