OWLv2 with MindTap Reader, 4 terms (24 months) Printed Access Card for Zumdahl/Zumdahl's Chemistry, 9th
OWLv2 with MindTap Reader, 4 terms (24 months) Printed Access Card for Zumdahl/Zumdahl's Chemistry, 9th
9th Edition
ISBN: 9781285185446
Author: Steven S. Zumdahl, Susan A. Zumdahl
Publisher: Cengage Learning
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Chapter 14, Problem 49E

Calculate the [OH] of each of the following solutions at 25°C. Identify each solution as neutral, acidic, or basic.

  a. [H+] = 1.0 × 10–7 M

  b. [H+] = 8.3 × 10–16 M

  c. [H+] = 12 M

  d. [H+] = 5.4 × 10–5 M

  46. Calculate the [H+] of each of the following solutions at 25°C. Identify each solution as neutral, acidic, or basic.

  a. [OH] = 1.5 M

  b. [OH] = 3.6 × 10–15 M

  c. [OH] = 1.0 × 10–7 M

  d. [OH] = 7.3 × 10–4 M

  49. Calculate the pH and pOH of the solutions in Exercises 45 and 46.

Expert Solution & Answer
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Interpretation Introduction

Interpretation:

The pH and the pOH values for thesolution in Exercises 45 and 46 are to be calculated.

Concept introduction:

The pH of a solution is define as a figure that expresses the acidity of the alkalinity of a given solution. A logarithmic scale is used on which, the value 7 corresponds to a neutral species, a value less than 7 corresponds to an acid and a value greater than 7 corresponds to a base.

The pOH of a solution is the measure of the [OH] .

The pH of a solution is calculated by the formula, pH=log[H+]

The pOH of a solution is calculated by the formula, pOH=log[OH]

At 25°C , pH+pOH=14

Answer to Problem 49E

Answer

(45a)

The pH value is 7_ and the pOH value is 7_ .

(45b)

The pH value is 15_ and the pOH value is -1_ .

(45c)

The pH value is 1.1_ and the pOH value is 12.9_ .

(45d)

The pH value is 4.3_ and the pOH value is 9.7_ .

(46a)

The pOH value is 0.18_ and the pOH value is 13.82_ .

(46b)

The pOH value is 14.4_ and the pOH value is -0.4_ .

(46c)

The pOH value is 7_ and the pOH value is 7_ .

(46d)

The pOH value is 3.14_ and the pOH value is 10.86_ .

To determine: The pH and the pOH value for the given species.

Explanation of Solution

Explanation

(45a)

Calculation of pH of the solution

The pH value is 7_ .

Given

The temperature is 25°C .

The [H+]=1.0×107M .

The pH of a solution is calculated by the formula,

pH=log[H+]

Substitute the given value of [H+] in the above expression.

pH=log[1.0×107]=7_

Calculation of pOH of the solution

The pOH value is 7_ .

At 25°C ,

pH+pOH=14

Substitute the calculated value of pH in the above expression.

pH+pOH=147+pOH=14pOH=7_

(45b)

Calculation of pH of the solution

The pH value is 15_ .

Given

The temperature is 25°C .

The [H+]=8.3×1016M .

The pH of a solution is calculated by the formula,

pH=log[H+]

Substitute the given value of [H+] in the above expression.

pH=log[8.3×1016]=15_

Calculation of pOH of the solution

The pOH value is -1_ .

At 25°C ,

pH+pOH=14

Substitute the calculated value of pH in the above expression.

pH+pOH=1515+pOH=14pOH=-1_

(45c)

The pH value is 1.1_ .

Given

The temperature is 25°C .

The [H+]=12M .

The pH of a solution is calculated by the formula,

pH=log[H+]

Substitute the given value of [H+] in the above expression.

pH=log[12]1.1_

The pOH value is 12.9_ .

At 25°C ,

pH+pOH=14

Substitute the calculated value of pH in the above expression.

pH+pOH=1.11.1+pOH=14pOH=12.9_

(45d)

The pH value is 4.3_ .

Given

The temperature is 25°C .

The [H+]=5.4×105M .

The pH of a solution is calculated by the formula,

pH=log[H+]

Substitute the given value of [H+] in the above expression.

pH=log[5.4×105]4.3_

The pOH value is 9.7_ .

At 25°C ,

pH+pOH=14

Substitute the calculated value of pH in the above expression.

pH+pOH=4.34.3+pOH=14pOH=9.7_

(46a)

The pOH value is 0.18_ .

Given

The temperature is 25°C .

The [OH]=1.5M .

The pOH of a solution is calculated by the formula,

pOH=log[OH]

Substitute the given value of [OH] in the above expression.

pOH=log[1.5]=0.18_

The pOH value is 13.82_ .

At 25°C ,

pH+pOH=14

Substitute the calculated value of pOH in the above expression.

pH+pOH=140.18+pH=14pOH=13.82_

(46b)

The pOH value is 14.4_ .

Given

The temperature is 25°C .

The [OH]=3.6×1015M .

The pOH of a solution is calculated by the formula,

pOH=log[OH]

Substitute the given value of [OH] in the above expression.

pOH=log[3.6×1015]=14.4_

The pOH value is -0.4_ .

At 25°C ,

pH+pOH=14

Substitute the calculated value of pOH in the above expression.

pH+pOH=1414.4+pH=14pOH=-0.4_

(46c)

The pOH value is 7_ .

Given

The temperature is 25°C .

The [OH]=1.0×107M .

The pOH of a solution is calculated by the formula,

pOH=log[OH]

Substitute the given value of [OH] in the above expression.

pOH=log[1.0×107]=7_

The pOH value is 7_ .

At 25°C ,

pH+pOH=14

Substitute the calculated value of pOH in the above expression.

pH+pOH=147+pH=14pOH=7_

(46d)

The pOH value is 3.14_ .

Given

The temperature is 25°C .

The [OH]=7.3×104M .

The pOH of a solution is calculated by the formula,

pOH=log[OH]

Substitute the given value of [OH] in the above expression.

pOH=log[7.3×104]=3.14_

The pOH value is 10.86_ .

At 25°C ,

pH+pOH=14

Substitute the calculated value of pOH in the above expression.

pH+pOH=143.14+pH=14pOH=10.86_

Conclusion

At a temperature of 25°C pH and pOH of the given solutions were calculated.

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Chapter 14 Solutions

OWLv2 with MindTap Reader, 4 terms (24 months) Printed Access Card for Zumdahl/Zumdahl's Chemistry, 9th

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