Bundle: Chemistry: An Atoms First Approach, Loose-leaf Version, 2nd + OWLv2 with Student Solutions Manual, 4 terms (24 months) Printed Access Card
Bundle: Chemistry: An Atoms First Approach, Loose-leaf Version, 2nd + OWLv2 with Student Solutions Manual, 4 terms (24 months) Printed Access Card
2nd Edition
ISBN: 9781337086431
Author: Steven S. Zumdahl, Susan A. Zumdahl
Publisher: Cengage Learning
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Chapter 14, Problem 58E

Consider the titration of 80.0 mL of 0.100 M Ba(OH)2 by 0.400 M HCl. Calculate the pH of the resulting solution after the following volumes of HCl have been added.

a. 0.0 mL

b. 20.0 mL

c. 30.0 mL

d. 40.0 mL

e. 80.0 mL

 (a)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The concentration of HCl used in titration of a stated volume and concentration of Ba(OH)2 is given. The pH of the resulting solution after the addition of a given volume of HCl is to be calculated.

Concept introduction:

Titration is a process to determine the concentration of an unknown solution with the help of a solution of a known concentration value.

The pOH is calculated by the formula,

pOH=log10[OH]

The relation between pH and pOH is,

pH+pOH=14

Answer to Problem 58E

The pH of the resulting solution, after the addition of 0mL of HCl , is 13.301_ .

Explanation of Solution

Explanation

Given

Concentration of Ba(OH)2 is 0.100M .

The pOH is determined by the [OH] present in the solution.

In the given titration,

0.0mL of 0.4M HCl is added to the given 80mL of 0.100M Ba(OH)2 .

Since, Ba(OH)2 is a strong base, it completely dissociates into its ions. The major species present are OH,Ba2+ and H2O .

The complete dissociation of Ba(OH)2 leads to the formation of 2OH ions.

Therefore, the concentration of OH in 0.100M Ba(OH)2 is,

[OH]=2×0.100M=0.200M_

The concentration of OH is 0.200M .

Formula

The pOH is calculated by the formula,

pOH=log10[OH]

Where,

  • [OH] is concentration of OH ions.

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

pOH=log10[OH]=log10(0.200)=0.699_

Formula

The relation between pH and pOH is,

pH+pOH=14

Where,

  • pH is a measure of concentration of H+ .
  • pOH is a measure of concentration of OH .

Substitute the value of pOH in above equation.

pH+pOH=14pH+0.699=14pH=13.301_

(b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The concentration of HCl used in titration of a stated volume and concentration of Ba(OH)2 is given. The pH of the resulting solution after the addition of a given volume of HCl is to be calculated.

Concept introduction:

Titration is a process to determine the concentration of an unknown solution with the help of a solution of a known concentration value.

The pOH is calculated by the formula,

pOH=log10[OH]

The relation between pH and pOH is,

pH+pOH=14

Answer to Problem 58E

The pH of the resulting solution, after the addition of 20.0mL of HCl , is 12.9_ .

Explanation of Solution

Explanation

Given

Concentration of Ba(OH)2 is 0.100M .

Concentration of HCl is 0.400M .

Volume of original Ba(OH)2 solution is 80mL .

Volume of HCl added is 20.0mL .

Formula

The number of moles of compound in a solution is calculated using the formula,

Molesofcompound=Concentrationofcompound×Volumeofsolution

Substitute the values of concentration and volume of HCl in the above equation.

Molesofcompound=Concentrationofcompound×Volumeofsolution=0.4M×20.0mL=8.0mmol_

In the given titration,

20.0mL of HCl is added to 80mL of 0.100M Ba(OH)2 .

The number of moles of HCl added is 8.0mmol .

8.0mmol of H+ will react with 8.0mmol of OH in the solution.

The number of moles of OH originally present is,

Numberofmoles=Concentrationof[OH]×Volumeofsolution=0.200M×80.0mL=16mmol

The number of moles of OH remaining in the solution is calculated by the formula,

NumberofmolesofOHleft=TotalmolesofOHNumberofmolesthatreacted

Substitute the value of the total number of moles of OH and the moles of OH that reacted in the above expression.

NumberofmolesofOHleft=16.0mmol8.0mmol=8.0mmol

Formula

The pOH will be determined by OH remaining in the solution,

The remaining OH is calculated by the formula,

[OH]=mmolofOHleftVolumeoforiginalsolution(mL)×Volumeofcompoundadded(mL)

Substitute the values of OH left, volume of the original solution and volume of compound added in the above equation.

[OH]=mmolOHleftVolumeoforiginalsolution(mL)×Volumeofcompoundadded=8.0mmol(20.0+80.0)mL=0.08M_

The concentration of OH is 0.08M .

Formula

The pOH is calculated by the formula,

pOH=log10[OH]

Where,

  • [OH] is concentration of OH ions.

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

pOH=log10[OH]=log10(0.08)=1.1_

Formula

The relation between pH and pOH is,

pH+pOH=14

Where,

  • pH is a measure of concentration of H+ .
  • pOH is a measure of concentration of OH .

Substitute the value of pOH in above equation.

pH+pOH=14pH+1.1=14pH=12.9_

 (c)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The concentration of HCl used in titration of a stated volume and concentration of Ba(OH)2 is given. The pH of the resulting solution after the addition of a given volume of HCl is to be calculated.

Concept introduction:

Titration is a process to determine the concentration of an unknown solution with the help of a solution of a known concentration value.

The pOH is calculated by the formula,

pOH=log10[OH]

The relation between pH and pOH is,

pH+pOH=14

Answer to Problem 58E

The pH of the resulting solution, after the addition of 30.0mL of HCl , is 12.557_ .

Explanation of Solution

Explanation

Given

Concentration of Ba(OH)2 is 0.100M .

Concentration of HCl is 0.400M .

Volume of Ba(OH)2 original solution is 80mL .

Volume of HCl added is 30.0mL .

Formula

The number of moles of compound in a solution is calculated using the formula,

Molesofcompound=Concentrationofcompound×Volumeofsolution

Substitute the values of concentration and volume of HCl in the above equation.

Molesofcompound=Concentrationofcompound×Volumeofsolution=0.4M×30mL=12.0mmol_

In the given titration, 30.0mL of HCl is added to 80mL of 0.100M Ba(OH)2 . It means that 12.0mmol of H+ will react with 12.0mmol of OH .

The number of moles of OH originally present is,

Numberofmoles=Concentrationof[OH]×Volumeofsolution=0.200M×80.0mL=16mmol

The number of moles of OH remaining in the solution is calculated by the formula,

NumberofmolesofOHleft=TotalmolesofOHNumberofmolesthatreacted

Substitute the value of the total number of moles of OH and the moles of OH that reacted in the above expression.

NumberofmolesofOHleft=16.0mmol12.0mmol=4.0mmol

Formula

The pOH will be determined by OH remaining in the solution,

The remaining OH is calculated by the formula,

[OH]=mmolofOHleftVolumeoforiginalsolution(mL)×Volumeofcompoundadded(mL)

Substitute the values of OH left, volume of original solution and volume of compound added in the above equation.

[OH]=mmolOHleftVolumeoforiginalsolution(mL)×Volumeofcompoundadded=4.0mmol(30.0+80.0)mL=0.036M_

Formula

The pOH is calculated using the formula,

pOH=log10[OH]

Where,

  • pOH measure of OH ions.
  • [OH] is concentration of OH ions.

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

pOH=log10[OH]=log100.036M=1.443_

Formula

The relation between pH and pOH is,

pH+pOH=14

Where,

  • pH is a measure of concentration of H+ .
  • pOH is a measure of concentration of OH .

Substitute the value of pOH in above equation.

pH+pOH=14pH+1.443=14pH=12.557_

(d)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The concentration of HCl used in titration of a stated volume and concentration of Ba(OH)2 is given. The pH of the resulting solution after the addition of a given volume of HCl is to be calculated.

Concept introduction:

Titration is a process to determine the concentration of an unknown solution with the help of a solution of a known concentration value.

The pOH is calculated by the formula,

pOH=log10[OH]

The relation between pH and pOH is,

pH+pOH=14

Answer to Problem 58E

The pH of the resulting solution, after the addition of 40.0mL of HCl , is 7_ .

Explanation of Solution

Explanation

Given

Concentration of Ba(OH)2 is 0.100M .

Concentration of HCl is 0.400M .

Volume of Ba(OH)2 original solution is 80mL .

Volume of HCl added is 40.0mL .

Formula

The number of moles of compound in a solution is calculated using the formula,

Molesofcompound=Concentrationofcompound×Volumeofsolution

Substitute the values of concentration and volume of HCl in the above equation.

Molesofcompound=Concentrationofcompound×Volumeofsolution=0.4M×40mL=16.0mmol_

In the given titration, 40.0mL of HCl is added to 80mL of 0.100M Ba(OH)2 . It means that 16.0mmol of H+ will react with 16.0mmol of OH in Ba(OH)2 (all the OH ions and H+ get consumed). It means that solution is completely neutralized. Therefore, the pH value of the solution is 7_ .

(e)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The concentration of HCl used in titration of a stated volume and concentration of Ba(OH)2 is given. The pH of the resulting solution after the addition of a given volume of HCl is to be calculated.

Concept introduction:

Titration is a process to determine the concentration of an unknown solution with the help of a solution of a known concentration value.

The pOH is calculated by the formula,

pOH=log10[OH]

The relation between pH and pOH is,

pH+pOH=14

Answer to Problem 58E

The pH of the resulting solution, after the addition of 80.0mL of HCl , is 1_ .

Explanation of Solution

Explanation

Given

Concentration of Ba(OH)2 is 0.100M .

Concentration of HCl is 0.400M .

Volume of Ba(OH)2 original solution is 80mL .

Volume of HCl added is 80.0mL .

Formula

The number of moles of compound in a solution is calculated using the formula,

Molesofcompound=Concentrationofcompound×Volumeofsolution

Substitute the values of concentration and volume of HCl in the above equation.

Molesofcompound=Concentrationofcompound×Volumeofsolution=0.4M×80mL=32.0mmol_

In the given titration, 80.0mL of HCl is added to 80mL of 0.100M Ba(OH)2 . If 32.0mmol of H+ will react with 16.0mmol of OH in Ba(OH)2 .

The number of moles of OH originally present is,

Numberofmoles=Concentrationof[OH]×Volumeofsolution=0.200M×80.0mL=16mmol

The number of moles of OH remaining in the solution is calculated by the formula,

NumberofmolesofOHleft=TotalmolesofOHNumberofmolesthatreacted

Substitute the value of the total number of moles of OH and the moles of OH that reacted in the above expression.

NumberofmolesofOHleft=32.0mmol16.0mmol=16.0mmol

Formula

The concentration of H+ ions remaining in the solution is calculated by the formula,

[H+]=mmolH+leftVolumeoforiginalsolution(mL)×Volumeofcompoundadded

Substitute the values of H+ left, volume of original solution and volume of compound added in the above equation.

[H+]=mmolH+leftVolumeoforiginalsolution(mL)×Volumeofcompoundadded=16.0mmol(40.0+10.0)mL=0.1M_

The concentration of H+ is 0.1M .

Formula

The pH is calculated using the formula,

pH=log10[H+]

Where,

  • pH measure of H+ ions.
  • [H+] is concentration of H+ ions.

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

pH=log10[H+]=log10(0.1)=1_

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Chapter 14 Solutions

Bundle: Chemistry: An Atoms First Approach, Loose-leaf Version, 2nd + OWLv2 with Student Solutions Manual, 4 terms (24 months) Printed Access Card

Ch. 14 - What are the major species in solution after...Ch. 14 - Prob. 2ALQCh. 14 - Prob. 3ALQCh. 14 - Prob. 4ALQCh. 14 - Sketch two pH curves, one for the titration of a...Ch. 14 - Prob. 6ALQCh. 14 - Prob. 7ALQCh. 14 - You have a solution of the weak acid HA and add...Ch. 14 - The common ion effect for weak acids is to...Ch. 14 - Prob. 10QCh. 14 - Prob. 11QCh. 14 - Consider the following pH curves for 100.0 mL of...Ch. 14 - An acid is titrated with NaOH. 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After adding 30.0...Ch. 14 - A student dissolves 0.0100 mole of an unknown weak...Ch. 14 - Prob. 69ECh. 14 - Prob. 70ECh. 14 - Potassium hydrogen phthalate, known as KHP (molar...Ch. 14 - A certain indicator HIn has a pKa of 3.00 and a...Ch. 14 - Prob. 73ECh. 14 - Prob. 74ECh. 14 - Prob. 75ECh. 14 - Prob. 76ECh. 14 - Prob. 77ECh. 14 - Estimate the pH of a solution in which crystal...Ch. 14 - Prob. 79ECh. 14 - Prob. 80ECh. 14 - Prob. 81AECh. 14 - Prob. 82AECh. 14 - Tris(hydroxymethyl)aminomethane, commonly called...Ch. 14 - Prob. 84AECh. 14 - You have the following reagents on hand: Solids...Ch. 14 - Prob. 86AECh. 14 - Prob. 87AECh. 14 - What quantity (moles) of HCl(g) must be added to...Ch. 14 - Calculate the value of the equilibrium constant...Ch. 14 - The following plot shows the pH curves for the...Ch. 14 - Calculate the volume of 1.50 102 M NaOH that must...Ch. 14 - Prob. 92AECh. 14 - A certain acetic acid solution has pH = 2.68....Ch. 14 - A 0.210-g sample of an acid (molar mass = 192...Ch. 14 - The active ingredient in aspirin is...Ch. 14 - One method for determining the purity of aspirin...Ch. 14 - A student intends to titrate a solution of a weak...Ch. 14 - Prob. 98AECh. 14 - Prob. 99AECh. 14 - Consider 1.0 L of a solution that is 0.85 M HOC6H5...Ch. 14 - Prob. 101CWPCh. 14 - Consider the following acids and bases: HCO2H Ka =...Ch. 14 - Prob. 103CWPCh. 14 - Prob. 104CWPCh. 14 - Consider the titration of 100.0 mL of 0.100 M HCN...Ch. 14 - Consider the titration of 100.0 mL of 0.200 M...Ch. 14 - Prob. 107CWPCh. 14 - Prob. 108CPCh. 14 - A buffer is made using 45.0 mL of 0.750 M HC3H5O2...Ch. 14 - A 0.400-M solution of ammonia was titrated with...Ch. 14 - Prob. 111CPCh. 14 - Consider a solution formed by mixing 50.0 mL of...Ch. 14 - When a diprotic acid, H2A, is titrated with NaOH,...Ch. 14 - Consider the following two acids: In two separate...Ch. 14 - The titration of Na2CO3 with HCl bas the following...Ch. 14 - Prob. 116CPCh. 14 - A few drops of each of the indicators shown in the...Ch. 14 - Malonic acid (HO2CCH2CO2H) is a diprotic acid. In...Ch. 14 - A buffer solution is prepared by mixing 75.0 mL of...Ch. 14 - A 10.00-g sample of the ionic compound NaA, where...Ch. 14 - Prob. 121IPCh. 14 - Prob. 122MP
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