EBK INTRODUCTION TO CHEMISTRY
EBK INTRODUCTION TO CHEMISTRY
5th Edition
ISBN: 9781260162165
Author: BAUER
Publisher: MCGRAW HILL BOOK COMPANY
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Chapter 13, Problem 147QP

When 10.0  mL of a  0.10   M  HCl solution is diluted to 1 .00 L , what is the pH of the new solution?

A . pH = 1.00 B . pH = 1.00 C . pH = 2.00 D . pH = 3.00 E . pH = 4.00

Which of the other pH values could you obtain by diluting a 0.10   M   HCl solution, and how would you prepare each solution with the desired pH?

(a)

Expert Solution
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Interpretation Introduction

Interpretation:

The given statement that 0.1M HCl solution which is diluted in 1 L has pH value 1 or not is to be identified. If not, the concentration of the solution at which this pH value exists is to be calculated.

Explanation of Solution

It is given that 10 mL of 0.1M HCl solution is diluted in 1 L solution.

1 L=1 L×1000 mL1 L1 L=1000 mL

It is known that,

M1V1=M2V2 ….(1)

Substitute M1 , V1 , M2 and V2 as 0.1M , 10 mL , M2 and 1000 mL , respectively in equation (1).

M1V1=M2V20.1M×10 mL=M2×1000 mLM2=0.1M×10 mL1000 mLM2=103 M

The H3O+ of the new solution is 1×103 M . The pH is the negative log10 of the hydronium ion concentration. Therefore,

pH=log10H3O+pH=log101×103 MpH=3

The pH of new solution is 3 . The pH given is 1 . Therefore, the given statement is an incorrect statement.

The pH given is 1 and the hydronium ion concentration at this pH value is as follows:

log10H3O+=pHlog10H3O+=1H3O+=101H3O+=10 M

Now, pH of 1 cannot be obtained from 0.1M solution as diluting will increase the pH and hence the resulting concentration will be lower than 10 M .

(b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The given statement that 0.1M HCl solution which is diluted in 1 L has pH value 1 or not is to be identified. If not, the concentration of the solution at which this pH value exists is to be calculated.

Explanation of Solution

The pH value of the given solution is 3 as calculated in sub-part (a). Therefore, the given statement is an incorrect statement.

The pH given is 1 and the hydronium ion concentration at this pH value is as follows:

log10H3O+=pHlog10H3O+=1H3O+=101H3O+=0.1 M

The given solution is already 0.1 M and hence no dilution is required.

(c)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The given statement that 0.1M HCl solution which is diluted in 1 L has pH value 2 or not is to be identified. If not, the concentration of the solution at which this pH value exists is to be calculated.

Explanation of Solution

The pH value of the given solution is 3 as calculated in sub-part (a). Therefore, the given statement is an incorrect statement.

The pH given is 2 and the hydronium ion concentration at this pH value is as follows:

log10H3O+=pHlog10H3O+=2H3O+=102H3O+=0.01 M

Substitute M1 , V1 , M2 and V2 as 0.1M , 10 mL , 0.01 M and V2 , respectively in equation (1).

M1V1=M2V20.1M×10 mL=0.01M×V2V2=0.1M×10 mL0.01 MV2=100 mL

The solution needs to be diluted to 100 mL to get the desired pH .

(d)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The given statement that 0.1M HCl solution which is diluted in 1 L has pH value 3 or not is to be identified. If not, the concentration of the solution at which this pH value exists is to be calculated.

Explanation of Solution

The pH value of the given solution is 3 as calculated in sub-part (a). Therefore, the given statement is a correct statement.

(e)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The given statement that 0.1M HCl solution which is diluted in 1 L has pH value 4 or not is to be identified. If not, the concentration of the solution at which this pH value exists is to be calculated.

Explanation of Solution

The pH value of the given solution is 3 as calculated in sub-part (a). Therefore, the given statement is an incorrect statement.

The pH given is 2 and the hydronium ion concentration at this pH value is as follows:

log10H3O+=pHlog10H3O+=4H3O+=104H3O+=0.0001 M

Substitute M1 , V1 , M2 and V2 as 0.1M , 10 mL , 0.0001 M and V2 , respectively in equation (1).

M1V1=M2V20.1M×10 mL=0.0001M×V2V2=0.1M×10 mL0.0001 MV2=10000 mL

The solution needs to be diluted to 10000 mL or 10 L to get the desired pH .

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Chapter 13 Solutions

EBK INTRODUCTION TO CHEMISTRY

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