Chemical Principles
8th Edition
ISBN: 9781305581982
Author: Steven S. Zumdahl, Donald J. DeCoste
Publisher: Cengage Learning
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Textbook Question
Chapter 4, Problem 40E
How would you separate the following ions in aqueoussolution by selective precipitation?
a.
b.
c.
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A solution contains 0.220 M Pb2+ and 0.49 M Al3+. Calculate the pH range that would allow Al(OH)3 to precipitate but not Pb(OH)2. The Ksp values for Al(OH)3 and Pb(OH)2 can be found in this table.
Lead(II) hydroxide
Pb(OH)2
1.43×10–20
Aluminium hydroxide
Al(OH)3
4.6×10–33
A solution contains 0.21 M Pb^ 2+ and 0.42 M Al ^ 3+ .Calculate the pH range that would allow Al(OH)3 to precipitate but not Pb(OH)2. The Ksp for Al(OH)3 and Pb(OH)2 can be found in this table.
A. maximum Ph:
B. minimum Ph:
In precipitation titration, what would happen if a mixture of 2 anions is titrated with Ag+? Assuming the precipitates will have the same formula as AgL.
a. Both anions will react with the titrant at the same time
b. No precipitate will form since both anions will be competing
c. The anion which will produce a less soluble precipitate will react with the titrant first
d. The anion which will produce a more soluble Ag salt will be titrated first
Chapter 4 Solutions
Chemical Principles
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