Chemistry (Instructor's)
Chemistry (Instructor's)
10th Edition
ISBN: 9781305957787
Author: ZUMDAHL
Publisher: CENGAGE L
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Chapter 16, Problem 26E

Use the following data to calculate the Ksp value for each solid.

a. The solubility of Pb3(PO4) is 6.2 × 10−12 mol/L.

b. The solubility of Li2CO3 is 7.4 × 10−2 mol/L.

(a)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The solubility of Pb3(PO4)2 and Li2CO3 is given. The solubility product of Pb3(PO4)2 and Li2CO3 is to be calculated.

Concept introduction: The solubility product, Ksp is the equilibrium constant that is applied when salt partially dissolve in a solvent. The solubility product of dissociation of AxBy is calculated as,

Ksp=[A]x[B]y

Answer to Problem 26E

Answer

The solubility product of Pb3(PO4)2 is 9.9×1055_ .

Explanation of Solution

Explanation

To determine: The solubility product of Pb3(PO4)2 .

The concentration of Pb2+ is 18.6×1012mol/L_ .

Given

Solubility of Pb3(PO4)2 is 6.2×1012mol/L .

Since, solid Pb3(PO4)2 is placed in contact with water. Therefore, compound present before the reaction is Pb3(PO4)2 and H2O . The dissociation reaction of Pb3(PO4)2 is,

Pb3(PO4)2(s)3Pb2+(aq)+2PO43(aq)

Since, Pb3(PO4)2 does not dissolved initially, hence,

[Pb2+]initial=[PO43]initial=0

The concentration at equilibrium can be calculated from the measured solubility of Pb3(PO4)2 . If 6.2×1012mol of Pb3(PO4)2 is dissolved in 1.0L of solution, the change in solubility will be equal to 6.2×1012mol/L . The reaction is,

Pb3(PO4)2(s)3Pb2+(aq)+2PO43(aq)

Therefore,

6.2×1012mol/LPb3(PO4)23(6.2×1012mol/L)Pb2++2(6.2×1012mol/L)PO43

The equilibrium concentration of Pb2+ is written as,

[Pb2+]=[Pb2+]initial+changetoreachequilibrium

Substitute the value of [Pb2+]initial and change to reach equilibrium in the above equation.

[Pb2+]=[Pb2+]initial+changetoreachequilibrium=0+3(6.2×1012mol/L)=18.6×1012mol/L_

The concentration of PO43 is 12.4×1012mol/L_ .

Given

Solubility of Pb3(PO4)2 is 4.8×105mol/L .

The equilibrium concentration of PO43 is written as,

[PO43]=[PO43]initial+changetoreachequilibrium

Substitute the value of [PO43]initial and change to reach equilibrium in the above equation.

[PO43]=[PO43]initial+changetoreachequilibrium=0+(2×6.2×1012mol/L)=12.4×1012mol/L_

The solubility product of Pb3(PO4)2 is 9.9×1055_ .

The concentration of Pb2+ is 18.6×1012mol/L .

The concentration of PO43 is 12.4×1012mol/L .

Formula

The solubility product of Pb3(PO4)2 is calculated as,

Ksp=[Pb2+]3[PO43]2

Where,

  • Ksp is solubility product.
  • [Pb2+] is concentration of Pb2+ .
  • [PO43] is concentration of PO43

Substitute the values of [Pb2+] and [PO43] in the above expression.

Ksp=[Pb2+]3[PO43]2=(18.6×1012)3(12.4×1012)2=9.9×1055_

(b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The solubility of Pb3(PO4)2 and Li2CO3 is given. The solubility product of Pb3(PO4)2 and Li2CO3 is to be calculated.

Concept introduction: The solubility product, Ksp is the equilibrium constant that is applied when salt partially dissolve in a solvent. The solubility product of dissociation of AxBy is calculated as,

Ksp=[A]x[B]y

Answer to Problem 26E

Answer

The solubility product of Li2CO3 is 1.6×103_ .

Explanation of Solution

Explanation

To determine: The solubility product of Li2CO3 .

The concentration of Li+ is 14.8×102mol/L_ .

Given

Solubility of Li2CO3 is 7.4×102mol/L .

Since, solid Li2CO3 is placed in contact with water. Therefore, compound present before the reaction is Li2CO3 and H2O . The dissociation reaction of Li2CO3 is,

Li2CO3(s)2Li+(aq)+CO32(aq)

Since, Li2CO3 does not dissolved initially, hence,

[Li+]initial=[CO32]initial=0

The concentration at equilibrium can be calculated from the measured solubility of Li2CO3 . If 7.4×102mol/L of Li2CO3 is dissolved in 1.0L of solution, the change in solubility will be equal to 7.4×102mol/L . The reaction is,

Li2CO3(s)2Li+(aq)+CO32(aq)

Therefore,

7.4×102mol/LLi2CO32(7.4×102mol/L)Li++(7.4×102mol/L)CO32

The equilibrium concentration of Li+ is written as,

[Li+]=[Li+]initial+changetoreachequilibrium

Substitute the value of [Li+]initial and change to reach equilibrium in the above equation.

[Li+]=[Li+]initial+changetoreachequilibrium=0+2(7.4×102mol/L)=14.8×102mol/L_

The concentration of CO32 is 7.4×102mol/L_ .

Given

Solubility of Li2CO3 is 1.32×105mol/L .

The equilibrium concentration of CO32 is written as,

[CO32]=[CO32]initial+changetoreachequilibrium

Substitute the value of [CO32]initial and change to reach equilibrium in the above equation.

[CO32]=[CO32]initial+changetoreachequilibrium=0+(7.4×102mol/L)=7.4×102mol/L_

The solubility product of Li2CO3 is 1.6×103_ .

The concentration of Li+ is 7.4×102mol/L .

The concentration of CO32 is 14.8×102mol/L .

Formula

The solubility product of Li2CO3 is calculated as,

Ksp=[Li+]2[CO32]

Where,

  • Ksp is solubility product.
  • [Li+] is concentration of Li+ .
  • [CO32] is concentration of CO32

Substitute the values of [Bi3+] and [I] in the above expression.

Ksp=[Li+]2[CO32]=(14.8×102)2(7.4×102)=1.6×103_

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Chapter 16 Solutions

Chemistry (Instructor's)

Ch. 16 - Which of the following will affect the total...Ch. 16 - Prob. 2ALQCh. 16 - You are browsing through the Handbook of...Ch. 16 - A friend tells you: The constant Ksp of a salt is...Ch. 16 - Explain the following phenomenon: You have a test...Ch. 16 - What happens to the Ksp value of a solid as the...Ch. 16 - Which is more likely to dissolve in an acidic...Ch. 16 - Two different compounds have about the same molar...Ch. 16 - Sodium chloride is listed in the solubility rules...Ch. 16 - For which of the following is the Ksp value of the...Ch. 16 - Ag2S(s) has a larger molar solubility than CuS...Ch. 16 - Solubility is an equilibrium position, whereas Ksp...Ch. 16 - Prob. 13QCh. 16 - Prob. 14QCh. 16 - The common ion effect for ionic solids (salts) is...Ch. 16 - Sulfide precipitates are generally grouped as...Ch. 16 - List some ways one can increase the solubility of...Ch. 16 - The solubility of PbCl2 increases with an increase...Ch. 16 - You have two salts, AgX and AgY, both with very...Ch. 16 - The stepwise formation constants for a complex ion...Ch. 16 - Silver chloride dissolves readily in 2 M NH3 but...Ch. 16 - If a solution contains either Pb2+(aq) or Ag+(aq),...Ch. 16 - Write balanced equations for the dissolution...Ch. 16 - Write balanced equations for the dissolution...Ch. 16 - Prob. 25ECh. 16 - Use the following data to calculate the Ksp value...Ch. 16 - Approximately 0.14 g nickel(II) hydroxide,...Ch. 16 - The solubility of the ionic compound M2X3, having...Ch. 16 - The concentration of Pb2+ in a solution saturated...Ch. 16 - The concentration of Ag+ in a solution saturated...Ch. 16 - Calculate the solubility of each of the following...Ch. 16 - Calculate the solubility of each of the following...Ch. 16 - Cream of tartar, a common ingredient in cooking,...Ch. 16 - Barium sulfate is a contrast agent for X-ray scans...Ch. 16 - Calculate the molar solubility of Cd(OH)2, Ksp =...Ch. 16 - The solubility rules outlined in Chapter 4 say...Ch. 16 - Calculate the molar solubility of Al(OH)3, Ksp = 2...Ch. 16 - Calculate the molar solubility of Co(OH)3, Ksp =...Ch. 16 - For each of the following pairs of solids,...Ch. 16 - For each of the following pairs of solids,...Ch. 16 - Calculate the solubility (in moles per liter) of...Ch. 16 - Calculate the solubility of Co(OH)2(s) (Ksp = 2.5 ...Ch. 16 - The Ksp for silver sulfate (Ag2SO4) is 1.2 105....Ch. 16 - The Ksp for lead iodide (PbI2) is 1.4 108....Ch. 16 - Calculate the solubility of solid Ca3(PO4)2 (Ksp =...Ch. 16 - Calculate the solubility of solid Pb3(P04)2 (Ksp =...Ch. 16 - Prob. 47ECh. 16 - The solubility of Pb(IO3)(s) in a 0.10-M KIO3...Ch. 16 - Which of the substances in Exercises 27 and 28...Ch. 16 - For which salt in each of the following groups...Ch. 16 - What mass of ZnS (Ksp = 2.5 1022) will dissolve...Ch. 16 - The concentration of Mg2+ in seawater is 0.052 M....Ch. 16 - Will a precipitate form when 100.0 mL of 4.0 104...Ch. 16 - A solution contains 1.0 105 M Ag+ and 2.0 106 M...Ch. 16 - A solution is prepared by mixing 100.0 mL of 1.0 ...Ch. 16 - If 10.0 mL of 2.0 103 M Cr(NO3)3 is added to 10.0...Ch. 16 - Calculate the final concentrations of K+(aq),...Ch. 16 - A solution is prepared by mixing 75.0 mL of 0.020...Ch. 16 - A 50.0-mL sample of 0.00200 M AgNO3 is added to...Ch. 16 - Prob. 60ECh. 16 - A solution contains 1.0 105 M Na3PO4. What is the...Ch. 16 - A solution is 1 104 M in NaF, Na2S, and Na3PO4....Ch. 16 - A solution contains 0.25 M Ni(NO3)2 and 0.25 M...Ch. 16 - Write equations for the stepwise formation of each...Ch. 16 - Write equations for the stepwise formation of each...Ch. 16 - In the presence of CN, Fe3+ forms the complex ion...Ch. 16 - In the presence of NH3, Cu2+ forms the complex ion...Ch. 16 - Prob. 69ECh. 16 - Prob. 70ECh. 16 - The overall formation constant for HgI42 is 1.0 ...Ch. 16 - A solution is prepared by adding 0.10 mole of...Ch. 16 - A solution is formed by mixing 50.0 mL of 10.0 M...Ch. 16 - A solution is prepared by mixing 100.0 mL of 1.0 ...Ch. 16 - a. Calculate the molar solubility of AgI in pure...Ch. 16 - Solutions of sodium thiosulfate are used to...Ch. 16 - Kf for the complex ion Ag(NH3)2+ is 1.7 107. Ksp...Ch. 16 - Prob. 78ECh. 16 - Prob. 79ECh. 16 - The solubility of copper(II) hydroxide in water...Ch. 16 - A solution contains 0.018 mole each of I, Br, and...Ch. 16 - Magnesium hydroxide, Mg(OH)2, is the active...Ch. 16 - Tooth enamel is composed of the mineral...Ch. 16 - The U.S. Public Health Service recommends the...Ch. 16 - What mass of Ca(NO3)2 must be added to 1.0 L of a...Ch. 16 - Calculate the mass of manganese hydroxide present...Ch. 16 - Prob. 87AECh. 16 - The active ingredient of Pepto-Bismol is the...Ch. 16 - Consider saturated solutions of die following...Ch. 16 - Silver cyanide (AgCN) is an insoluble sail with...Ch. 16 - Nanotechnology has become an important field, with...Ch. 16 - The equilibrium constant for the following...Ch. 16 - Calculate the concentration of Pb2+ in each of the...Ch. 16 - Will a precipitate of Cd(OH)2 form if 1.0 mL of...Ch. 16 - a. 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