OWLv2 for Ebbing/Gammon's General Chemistry, 11th Edition, [Instant Access], 1 term (6 months)
OWLv2 for Ebbing/Gammon's General Chemistry, 11th Edition, [Instant Access], 1 term (6 months)
11th Edition
ISBN: 9781305673939
Author: Darrell Ebbing; Steven D. Gammon
Publisher: Cengage Learning US
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Chapter 16, Problem 16.135QP

A 30.0-mL sample of 0.05 M HClO is titrated by a 0.0250 M KOH solution Ka for HClO is 3.5 × 10−8. Calculate a the pH when no base has been added; b the pH when 30.00 mL of the base has been added; c the pH at the equivalence point; d the pH when an additional 4.00 mL of the KOH solution has been added beyond the equivalence point.

(a)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The pH of the given points of the titration of HClO   with KOH has to be calculated.

when no base has been added

Concept Introduction:

pOH definition:

The pOH of a solution is defined as the negative base-10 logarithm of the hydroxide ion [OH] concentration.

pOH=-log[OH]

Relationship between pH  and pOH:

pH + pOH = 14

Answer to Problem 16.135QP

The pH of the given points of the titration of HClO with KOH are as follows,

The pH when no base has been added is 4.4

Explanation of Solution

To Calculate: The pH when no base has been added

Given data:

The volume of HClO = 30.0 mL

The concentration of HClO = 0.05 M

The concentration of KOH   = 0.0250 M

The Ka value for HClO is 3.5×108

pH prior to the start of the titration

Construct an equilibrium table for the hydrolysis of HClO as follows,

     HClO  +   H2O        H3O+    +   ClO
Initial (M)

0.05

x

0.05-x

0.00 0.00
Change (M) +x +x
Equilibrium (M) x x

The Ka value for HClO is 3.5×108

Now substitute equilibrium concentrations into the equilibrium-constant expression.

      Ka =(x)2(0.05x)Assume 0.05 is very small than x and neglect it in the denominator   3.5×108 (x)2(0.05)      x =4.18×105 M

Here, x gives the concentration of hydronium ion 4.18×105 M

Finally calculate pH as follows,

pH =-log[H3O+] =-log(4.18×105) =4.4

Conclusion

The pH when no base has been added was calculated as 4.4

(b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The pH of the given points of the titration of HClO   with KOH has to be calculated.

when 30.0 mL of the base has been added

Concept Introduction:

pOH definition:

The pOH of a solution is defined as the negative base-10 logarithm of the hydroxide ion [OH] concentration.

pOH=-log[OH]

Relationship between pH  and pOH:

pH + pOH = 14

Answer to Problem 16.135QP

The pH of the given points of the titration of HClO with KOH are as follows,

The pH when 30.0 mL of the base has been added is 7.5

Explanation of Solution

To Calculate: The pH when 30.0 mL of the base has been added

After the addition of 30.0 mL of 0.0250 M KOH , the reaction will be as follows

HClO + OH ClO + H2O

At this point, the total volume is, 30.0 mL + 30.0 mL = 60.0 mL

Now, the moles of HClO present at the initial and the moles of OH added are:

mol HClO  = M×V =0.05 M×30×103 L =1.50×103 molmol OH  = M×V =0.0250 M×30×103 L =0.7500×103 mol

After the reaction, the moles of ClO will be equal to the moles of OH added.

The moles of HClO present are:

mol HClO  = 1.50×103 mol - 0.7500×103 =0.7500×103 mol

The concentrations are:

[HClO] =0.7500×103 mol HClO60.0×103 L =0.0125 M[ClO] =0.7500×103 mol ClO60.0×103 L =0.0125 M

Solve for [H3O+] by Substituting the concentrations into the Ka expression

     Ka =[H3O+][ClO-][HClO]  3.5×108 =(0.0125+x)(x)(0.0125x)Assume that x is small compared to 0.0125 and neglect it (0.0125)(x)(0.125) x =  3.5×108 M

The pH is calculated as follows,

pH =-log(3.5×10-8) =7.45

Conclusion

The pH when 30.0 mL of the base has been added was calculated as 7.5

(c)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The pH of the given points of the titration of HClO   with KOH has to be calculated.

At the equivalence point

Concept Introduction:

pOH definition:

The pOH of a solution is defined as the negative base-10 logarithm of the hydroxide ion [OH] concentration.

pOH=-log[OH]

Relationship between pH  and pOH:

pH + pOH = 14

Answer to Problem 16.135QP

The pH of the given points of the titration of HClO with KOH are as follows,

The pH at the equivalence point is 9.8

Explanation of Solution

To Calculate: The pH at the equivalence point

Calculate the volume of KOH added to reach the equivalence point

The volume of KOH added is calculated as follows,

Volume of KOH Macid VacidMbase = (0.05 M)(30.0 mL)(0.0250 M) = 60.0 mL

Hence, the total volume is as follows,

Total volume = 30.0 mL + 60.0 mL =90.0 mL = 0.090 L

The equilibrium reaction is,

ClO + H2 HClO + OH-

[ClO] =1.50×103 mol90.0×103 L =0.0166 M

The value of Kb is calculated from Ka as follows,

Kb =KwKb =1.00×10-143.5×10-8 =2.85×107

Kb =[HClO][OH][ClO-]2.85×107 =x20.0166x x =6.90×105 M

Here, x gives the hydroxide ion concentration.

The pH can be calculated from pOH as follows,

pOH =-log[OH] =-log(6.90×10-5) =4.161pH + pOH  =14 pH =14 - pOH =14- 4.161 =9.8

Conclusion

The pH at the equivalence point was calculated as 9.8

(d)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

The pH of the given points of the titration of HClO   with KOH has to be calculated.

When an additional 4.00 mL of the KOH solution has been added beyond the equivalence point

Concept Introduction:

pOH definition:

The pOH of a solution is defined as the negative base-10 logarithm of the hydroxide ion [OH] concentration.

pOH=-log[OH]

Relationship between pH  and pOH:

pH + pOH = 14

Answer to Problem 16.135QP

The pH of the given points of the titration of HClO with KOH are as follows,

The pH when an additional 4.00 mL of the KOH solution has been added beyond the equivalence point is 11.0

Explanation of Solution

To Calculate: The pH when an additional 4.00 mL of the KOH solution has been added beyond the equivalence point

Calculate the moles of base added.

(0.0250 M)×94.0×103L = 1.60×10-3 mol

Moles of acid remaining  = 1.60×10-3 mol - 1.5×10-3 mol = 0.10×10-3 mol

The total volume after the addition of 4.00 mL of the KOH solution beyond the equivalence point: 90.0 mL + 4.0 mL = 94.0 mL

The hydroxide ion concentration and the pH are:

[OH] =0.10×10-3 mol94.0×10-3 L =0.00106 M

The pH is calculated as follows,

pOH =-log[OH] =-log(0.00106) =2.973pH + pOH  =14 pH =14 - 2.973 =11.0

Conclusion

The pH when an additional 4.00 mL of the KOH solution has been added beyond the equivalence point was calculated as 11.o

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Chapter 16 Solutions

OWLv2 for Ebbing/Gammon's General Chemistry, 11th Edition, [Instant Access], 1 term (6 months)

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Give an example.Ch. 16 - What is meant by the capacity of a buffer?...Ch. 16 - Prob. 16.15QPCh. 16 - If the pH is 8.0 at the equivalence point for the...Ch. 16 - Which of the following salts would produce the...Ch. 16 - If you mix 0.10 mol of NH3 and 0.10 mol of HCl in...Ch. 16 - Hydrogen sulfide, H2S, is a very weak diprotic...Ch. 16 - If 20.0 mL of a 0.10 M NaOH solution is added to a...Ch. 16 - Aqueous Solutions of Acids, Bases, and Salts a For...Ch. 16 - The pH of Mixtures of Acid, Base, and Salt...Ch. 16 - Which of the following beakers best represents a...Ch. 16 - You have 0.10-mol samples of three acids...Ch. 16 - Prob. 16.25QPCh. 16 - You have the following solutions, all of the same...Ch. 16 - Prob. 16.27QPCh. 16 - A chemist prepares dilute solutions of equal molar...Ch. 16 - Prob. 16.29QPCh. 16 - Prob. 16.30QPCh. 16 - You are given the following acidbase titration...Ch. 16 - The three flasks shown below depict the titration...Ch. 16 - Write chemical equations for the acid ionizations...Ch. 16 - Write chemical equations for the acid ionizations...Ch. 16 - Acrylic acid, whose formula is HC3H3O2 or...Ch. 16 - Heavy metal azides, which are salts of hydrazoic...Ch. 16 - Boric acid, B(OH)3, is used as a mild antiseptic....Ch. 16 - Formic acid, HCHO2, is used to make methyl formate...Ch. 16 - C6H4NH2COOH, para-aminobenzoic acid (PABA), is...Ch. 16 - Barbituric acid. 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