Chemistry
Chemistry
9th Edition
ISBN: 9781133611097
Author: Steven S. Zumdahl
Publisher: Cengage Learning
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Chapter 16, Problem 40E

The Ksp for lead iodide (PbI2) is 1.4 × 10−8. Calculate the solubility of lead iodide in each of the following.

a. water

b. 0.10 M Pb(NO3)2

c. 0.010 M NaI

(a)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The solubility product of PbI2 is given. The solubility of PbI2 is to be calculated for each given conditions.

Concept introduction: Solubility is defined as the maximum amount of solute that can dissolve at a certain amount of solvent at certain temperature. 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

Where,

  • x is coefficient of concentration of A .
  • y is coefficient of concentration of B .

Answer to Problem 40E

Answer

The solubility of PbI2 in water is 1.5×103mol/L_ .

Explanation of Solution

Explanation

To determine: The solubility of PbI2 in water.

The solubility of PbI2 in water is 0.0015mol/L_ .

Given

Solubility product of PbI2 is 1.4×108 .

Since, solid PbI2 is placed in contact with water. Therefore, compound present before the reaction is PbI2 and H2O . The dissociation reaction of PbI2 is,

PbI2(s)Pb2+(aq)+2I(aq)

Since, Pb2+ does not dissolved initially, hence,

[Pb2+]initial=[I]initial=0

The solubility of PbI2 can be calculated from the concentration of ions at equilibrium.

It is assumed that smol/L of solid is dissolved to reach the equilibrium. The meaning of 1:2 stoichiometry of salt is,

smol/LPbI2smol/LPb2++2smol/LI

Make the ICE table for the dissociation reaction of PbI2 .

PbI2(s)Pb2+(aq)+I(aq)Initial(M):00Chang(M):s2sEquilibrium(M):s2s

Formula

The solubility product of PbI2 is calculated as,

Ksp=[Pb2+][I]2=(s)(2s)2

Where,

  • Ksp is solubility product.
  • [Pb2+] is concentration of Pb2+ .
  • [I] is concentration of I .
  • s is the solubility.

Substitute the value of Ksp in the above expression.

Ksp=(s)(2s)21.4×108=4s3s=0.0015mol/L_

(b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The solubility product of PbI2 is given. The solubility of PbI2 is to be calculated for each given conditions.

Concept introduction: Solubility is defined as the maximum amount of solute that can dissolve at a certain amount of solvent at certain temperature. 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

Where,

  • x is coefficient of concentration of A .
  • y is coefficient of concentration of B .

Answer to Problem 40E

Answer

The solubility of PbI2 in 0.10M Pb(NO3)2 is 1.9×104mol/L_ .

Explanation of Solution

Explanation

To determine: The solubility of PbI2 in 0.10M Pb(NO3)2 .

The solubility of PbI2 in 0.10M Pb(NO3)2 is 1.9×104mol/L_ .

Given

Solubility product of PbI2 is 1.4×108 .

Concentration of Pb(NO3)2 is 0.10M .

The dissociation reaction of PbI2 is,

PbI2(s)Pb2+(aq)+2I(aq)

The ratio of moles between ions is 1:2 .

Since, Pb(NO3)2 is soluble in aqueous solution. The dissociation reaction of Pb(NO3)2 is,

Pb(NO3)2(aq)Pb2+(aq)+2NO3(aq)

The concentration of Pb2+ is,

[Pb2+]=0.10M

The solubility of PbI2 can be calculated from the concentration of ions at equilibrium.

Make the ICE table for the dissociation reaction of PbI2 .

PbI2(s)Pb2+(aq)+2I(aq)Initial(M):0.100Chang(M):s2sEquilibrium(M):0.10+s2s

Formula

The solubility product of PbI2 is calculated as,

Ksp=[Pb2+][I]2=(s+0.10)(2s)2

Where,

  • Ksp is solubility product.
  • [Pb2+] is concentration of Pb2+ .
  • [I] is concentration of I .
  • s is the solubility.

Since, value of s is expected to be small value hence, it is assumed that,

s+0.100.10

Substitute this value in the solubility product expression.

Ksp=(s+0.10)(2s)2=(0.10)(2s)2

Substitute the value of Ksp in the above expression.

Ksp=(0.10)(2s)21.4×108=(0.10)(2s)2s=1.9×104mol/L_

(c)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation: The solubility product of PbI2 is given. The solubility of PbI2 is to be calculated for each given conditions.

Concept introduction: Solubility is defined as the maximum amount of solute that can dissolve at a certain amount of solvent at certain temperature. 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

Where,

  • x is coefficient of concentration of A .
  • y is coefficient of concentration of B .

Answer to Problem 40E

Answer

The solubility of PbI2 in 0.010M NaI is 1.4×104mol/L_ .

Explanation of Solution

Explanation

To determine: The solubility of PbI2 in 0.010M NaI .

The solubility of PbI2 in 0.010M NaI is 1.4×104mol/L_ .

Given

Solubility product of PbI2 is 1.2×105 .

Concentration of NaI is 0.010M .

Since, NaI is soluble in aqueous solution. The dissociation reaction of NaI is,

NaI(aq)Na+(aq)+I(aq)

Since, the ratio of moles existed between dissolved ions and solid is 1:1 , 0.010M of NaI contains,

[Na+]=[I]=0.010M

The solubility of PbI2 can be calculated from the concentration of ions at equilibrium.

Make the ICE table for the dissociation reaction of PbI2 .

PbI2(s)Pb2+(aq)+       2I(aq)Initial(M):00.010Chang(M):s2sEquilibrium(M):s0.010+2s

Formula

The solubility product of PbI2 is calculated as,

Ksp=[Pb2+][I]2=(s)(0.010+2s)2

Where,

  • Ksp is solubility product.
  • [Pb2+] is concentration of Pb2+ .
  • [I] is concentration of I .
  • s is the solubility.

Since, value of s is expected to be small value, hence, it is assumed that,

(0.010+2s)0.010

Substitute this value in the solubility product expression.

Ksp=(s)(0.010+2s)2=(s)(0.010)2

Substitute the value of Ksp in the above expression.

Ksp=(s)(0.010)21.4×108=(s)(0.010)2s=1.4×104mol/L_

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Chapter 16 Solutions

Chemistry

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