Chemistry for Today: General, Organic, and Biochemistry
Chemistry for Today: General, Organic, and Biochemistry
9th Edition
ISBN: 9781305960060
Author: Spencer L. Seager, Michael R. Slabaugh, Maren S. Hansen
Publisher: Cengage Learning
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Chapter 9, Problem 9.28E

Calculate the molar concentration of OH in water solutions with the following H 3 O + molar concentrations:

a. 0.044

b. 1.3 × 10 4

c. 0.0087

d. 7.9 × 10 10

e. 3.3 × 10 2

Expert Solution
Check Mark
Interpretation Introduction

(a)

Interpretation:

The molar concentration of OH in water solutions with the given H3O+ molar concentrations is to be calculated.

Concept introduction:

The water undergoes self-ionization which can be represented by the reaction,

H2O(l)+H2O(l)H3O+(aq)+OH(aq)

The ionization constant of water is represented as,

K=[H3O+][OH][H2O][H2O]

The concentration of water remains constant and the self-ionization constant of water becomes,

Kw=[H3O+][OH]Kw=(1.0×107mol/L)(1.0×107mol/L)Kw=1.0×1014(mol/L)2

Answer to Problem 9.28E

The molar concentration of OH in water solutions is 2.27×1013mol/L.

Explanation of Solution

The ionic product of water Kw is,

Kw=[H3O+][OH]

The value of Kw is 1.0×1014(mol/L)2.

The given H3O+ molar concentration is 0.044mol/L. Substitute this value in the formula for ionic product.

1.0×1014(mol/L)2=0.044mol/L[OH][OH]=1.0×1014(mol/L)20.044mol/L[OH]=2.27×1013mol/L

Thus, the molar concentration of OH in water solutions is 2.27×1013mol/L.

Conclusion

The molar concentration of OH in water solutions is 2.27×1013mol/L.

Expert Solution
Check Mark
Interpretation Introduction

(b)

Interpretation:

The molar concentration of OH in water solutions with the given H3O+ molar concentrations is to be calculated.

Concept introduction:

The water undergoes self-ionization which can be represented by the reaction,

H2O(l)+H2O(l)H3O+(aq)+OH(aq)

The ionization constant of water is represented as,

K=[H3O+][OH][H2O][H2O]

The concentration of water remains constant and the self-ionization constant of water becomes,

Kw=[H3O+][OH]Kw=(1.0×107mol/L)(1.0×107mol/L)Kw=1.0×1014(mol/L)2

Answer to Problem 9.28E

The molar concentration of OH in water solutions is 7.69×1011mol/L.

Explanation of Solution

The ionic product of water Kw is,

Kw=[H3O+][OH]

The value of Kw is 1.0×1014(mol/L)2.

The given H3O+ molar concentration is 1.3×104mol/L. Substitute this value in the formula for ionic product.

1.0×1014(mol/L)2=1.3×104mol/L[OH][OH]=1.0×1014(mol/L)21.3×104mol/L[OH]=7.69×1011mol/L

Thus, the molar concentration of OH in water solutions is 7.69×1011mol/L.

Conclusion

The molar concentration of OH in water solutions is 7.69×1011mol/L.

Expert Solution
Check Mark
Interpretation Introduction

(c)

Interpretation:

The molar concentration of OH in water solutions with the given H3O+ molar concentrations is to be calculated.

Concept introduction:

The water undergoes self-ionization which can be represented by the reaction,

H2O(l)+H2O(l)H3O+(aq)+OH(aq)

The ionization constant of water is represented as,

K=[H3O+][OH][H2O][H2O]

The concentration of water remains constant and the self-ionization constant of water becomes,

Kw=[H3O+][OH]Kw=(1.0×107mol/L)(1.0×107mol/L)Kw=1.0×1014(mol/L)2

Answer to Problem 9.28E

The molar concentration of OH in water solutions is 1.15×1012mol/L.

Explanation of Solution

The ionic product of water Kw is,

Kw=[H3O+][OH]

The value of Kw is 1.0×1014(mol/L)2.

The given H3O+ molar concentration is 0.0087mol/L. Substitute this value in the formula for ionic product.

1.0×1014(mol/L)2=0.0087mol/L[OH][OH]=1.0×1014(mol/L)20.0087mol/L[OH]=1.15×1012mol/L

Thus, the molar concentration of OH in water solutions is 1.15×1012mol/L.

Conclusion

The molar concentration of OH in water solutions is 1.15×1012mol/L.

Expert Solution
Check Mark
Interpretation Introduction

(d)

Interpretation:

The molar concentration of OH in water solutions with the given H3O+ molar concentrations is to be calculated.

Concept introduction:

The water undergoes self-ionization which can be represented by the reaction,

H2O(l)+H2O(l)H3O+(aq)+OH(aq)

The ionization constant of water is represented as,

K=[H3O+][OH][H2O][H2O]

The concentration of water remains constant and the self-ionization constant of water becomes,

Kw=[H3O+][OH]Kw=(1.0×107mol/L)(1.0×107mol/L)Kw=1.0×1014(mol/L)2

Answer to Problem 9.28E

The molar concentration of OH in water solutions is 1.26×105mol/L.

Explanation of Solution

The ionic product of water Kw is,

Kw=[H3O+][OH]

The value of Kw is 1.0×1014(mol/L)2.

The given H3O+ molar concentration is 7.9×1010mol/L. Substitute this value in the formula for ionic product.

1.0×1014(mol/L)2=7.9×1010mol/L[OH][OH]=1.0×1014(mol/L)27.9×1010mol/L[OH]=1.26×105mol/L

Thus, the molar concentration of OH in water solutions is 1.26×105mol/L.

Conclusion

The molar concentration of OH in water solutions is 1.26×105mol/L.

Expert Solution
Check Mark
Interpretation Introduction

(e)

Interpretation:

The molar concentration of OH in water solutions with the given H3O+ molar concentrations is to be calculated.

Concept introduction:

The water undergoes self-ionization which can be represented by the reaction,

H2O(l)+H2O(l)H3O+(aq)+OH(aq)

The ionization constant of water is represented as,

K=[H3O+][OH][H2O][H2O]

The concentration of water remains constant and the self-ionization constant of water becomes,

Kw=[H3O+][OH]Kw=(1.0×107mol/L)(1.0×107mol/L)Kw=1.0×1014(mol/L)2

Answer to Problem 9.28E

The molar concentration of OH in water solutions is 3.03×1013mol/L.

Explanation of Solution

The ionic product of water Kw is,

Kw=[H3O+][OH]

The value of Kw is 1.0×1014(mol/L)2.

The given H3O+ molar concentration is 3.3×102mol/L. Substitute this value in the formula for ionic product.

1.0×1014(mol/L)2=3.3×102mol/L[OH][OH]=1.0×1014(mol/L)23.3×102mol/L[OH]=3.03×1013mol/L

Thus, the molar concentration of OH in water solutions is 3.03×1013mol/L.

Conclusion

The molar concentration of OH in water solutions is 3.03×1013mol/L.

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Chapter 9 Solutions

Chemistry for Today: General, Organic, and Biochemistry

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