Chemistry: An Atoms First Approach
Chemistry: An Atoms First Approach
2nd Edition
ISBN: 9781305079243
Author: Steven S. Zumdahl, Susan A. Zumdahl
Publisher: Cengage Learning
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Chapter 13, Problem 51E
Interpretation Introduction

Interpretation: The missing information in the given table is to be stated.

Concept introduction: The pH is the measure of its [H+] of any solution. The pOH is the measure of the [OH] of any solution. [H+] represents the total hydrogen ion concentration. [OH] represents the total hydroxide ion concentration. The nature of any solution is determined by its pH and pOH value.

To determine: The missing values in the table for solution a.

Expert Solution & Answer
Check Mark

Answer to Problem 51E

The given table has been completed as follows.

S.No.pHpOH[H+][OH]Acidic,Basic,orNeutralSolutiona6.887.121.31×107M7.6×108MAcidicSolutionb0.9213.080.119M8.4×1014MAcidicSolutionc10.893.111.28×1011M7.8×104MBasicSolutiond771.0×107M1.0×107MNeutral

Explanation of Solution

Explanation

For solution a

Given

The pH of the solution is 6.88 .

The sum,

pH+pOH=14

Where,

  • pOH is the measure of  hyroxide ion concentration.
  • pH is the measure of hydrogen ion concentration.

Substitute the value of pH in the above equation.

6.88+pOH=14pOH=146.88pOH=7.12_

The [H+] is 1.31×10-7M_ .

Given

The pH of the solution is 6.88 .

The pH value is calculated by the formula,

pH=log[H+]

Where,

  • [H+] is the total concentration of hydrogen ions.

Rearrange the above equation to calculate the value of [H+] .

[H+]=antilog(pH)

Substitute the value of pH in the above equation.

[H+]=antilog(pH)[H+]=Antilog(6.88)[H+]=1.31×10-7M_

The [OH] is 7.6×10-8M_ .

Given

The [H+] is 1.31×107M .

The ionic product of water is,

[H+][OH]=1.0×1014

Where,

  • [H+] is the concentration of hydrogen ion.
  • [OH] is the concentration of hydroxide ion.

Substitute the value of [H+] in the above equation.

1.31×107×[OH]=1.0×1014[OH]=1.0×10141.31×107[OH]=7.6×10-8M_

The solution is acidic.

In the given solution, the [H+]>[OH] . Therefore, the given solution is acidic.

For solution b

Given

The [OH] is 8.4×1014 .

The ionic product of water is,

[H+][OH]=1.0×1014

Where,

  • [H+] is the hydrogen ion concentration.
  • [OH] is the hydroxide ion concentration.

Substitute the value of [OH] in the above equation.

[H+]×8.4×1014=1.0×1014[H+]=1.0×10148.4×1014[H+]=0.119M_

The pH is 0.92_

Given

The [H+] is 0.119M

The pH value is calculated by the formula,

pH=log[H+]

Where,

  • [H+] is the total concentration of hydrogen ions.

Substitute the value of [H+] in the above equation.

pH=log[0.119]pH=0.92_

The pOH is 13.08_ .

Given

The pH is 0.92 .

The sum, pH+pOH=14

Substitute the value of pH in the above equation.

0.92+pOH=14pOH=140.92pOH=13.08_

The solution b is acidic.

In the given solution, the [H+]>[OH] . Therefore, the given solution is acidic.

For solution c

Given

The pOH is 3.11 .

The sum, pH+pOH=14

Substitute value of pOH in the above equation.

pH+3.11=14pH=143.11pH=10.89_

The [H+] is 1.28×10-11M_ .

Given

The pH is 10.89

The pH value is calculated by the formula,

pH=log[H+]

Where,

  • [H+] is the total concentration of hydrogen ions.

Rearrange the above equation to calculate the value of [H+] .

[H+]=antilog(pH)

Substitute the value of pH in the above equation.

[H+]=antilog[10.89][H+]=1.28×10-11_

The [OH] is 7.8×10-4M_ .

Given

The [H+] is 1.28×1011M .

The ionic product of water is,

[H+][OH]=1.0×1014

Substitute the value of [H+] in the above equation.

1.28×1011[OH]=1.0×1014[OH]=1.0×10141.28×1011[OH]=7.8×10-4M_

The solution c is basic.

In the given case, the [OH]>[H+] ; therefore, the solution is basic.

For solution d

Given

The [H+] is 1.0×107M .

The pH value is calculated by the formula,

pH=log[H+]

Where,

  • [H+] is the total concentration of hydrogen ions.

Substitute the value of [H+] in the above equation.

pH=log[1.0×107]pH=7_

The pOH is 7_ .

Given

The pH is 7 .

The sum, pH+pOH=14

Substitute value of pH in the above equation.

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

The [OH] is 1.0×10-7_ .

Given

The [H+] is 1.0×107M .

The ionic product of water is,

[H+][OH]=1.0×1014

Substitute the value of [H+] in the above equation.

1.0×107[OH]=1.0×1014[OH]=1.0×10141.0×107[OH]=1.0×10-7M_

The solution d is neutal.

In the given solution, the [H+]=[OH] ; hence, the solution is neutral.

Conclusion

Conclusion

The given table has been completed as follows.

S.No.pHpOH[H+][OH]Acidic,Basic,orNeutralSolutiona6.887.121.31×107M7.6×108MAcidicSolutionb0.9213.080.119M8.4×1014MAcidicSolutionc10.893.111.28×1011M7.8×104MBasicSolutiond771.0×107M1.0×107MNeutral

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Chapter 13 Solutions

Chemistry: An Atoms First Approach

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