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Chapter 16, Problem 16.113QP

Methylammonium chloride is a salt of methylamine, CH3NH2. A 0.10 M solution of this salt has a pH of 5.82.

  1. a Calculate the value for the equilibrium constant for the reaction

    CH 3 NH 3 + + H 2 O CH 3 NH 2 + H 3 O +

  2. b What is the Kb value for methylamine?
  3. c What is the pH of a solution in which 0.450 mol of solid methylammonium chloride is added to 1.00 L of a 0.250 M solution of methylamine? Assume no volume change.

(a)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

A 0.10 M solution of methylammonium chloride has a pH of 5.82

  1. (a) The value for the equilibrium constant for the  given reaction CH3NH3+ + H2 CH3NH2 + H3O+ has to be calculated
  2. (b) The Kb value for methylamine has to be calculated
  3. (c) The pH of a solution in which 0.450 mol of methylammonium chloride is added to 1.00 L of a 0.250 M solution of methylamine has to be calculated.

Concept Introduction:

Acid ionization constant Ka :

The ionization of a weak acid HA can be given as follows,

HA(aq)H+(aq)+A-(aq)

The equilibrium expression for the above reaction is given below.

Ka=[H+][A-][HA]

Where.

Ka is acid ionization constant,

[H+] is concentration of hydrogen ion

[A-] is concentration of acid anion

[HA] is concentration of the acid

Relationship between Ka and Kb :

Ka × Kb = Kw

pH definition:

The pH of a solution is defined as the negative base-10 logarithm of the hydronium ion [H3O+] concentration.

pH=-log[H3O+]

On rearranging,

[H3O+]=10pH

Answer to Problem 16.113QP

The value for the equilibrium constant for the given reaction CH3NH3+ + H2 CH3NH2 + H3O+ is Ka=2.3×10-11

Explanation of Solution

To Calculate: The value for the equilibrium constant for the given reaction CH3NH3+ + H2 CH3NH2 + H3O+

Given data:

Methylammonium chloride is a salt of methylamine (CH3NH2)

A 0.10 M solution of this salt has a pH of 5.82

The given reaction is CH3NH3+ + H2 CH3NH2 + H3O+

Equilibrium constant for the given reaction:

The hydronium ion concentration is found from the given pH as follows,

[H3O+] =10pH =105.82 =1.51×106 M

Construct an equilibrium table for the given reaction:

The initial concentration of CH3NH3+ is considered from the concentration of methylammonium chloride salt (0.10 M)

  CH3NH3+   +   H2 CH3NH2   +   H3O+
Initial (M)

0.10

x

0.10-x

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

Here, x gives the concentration of hydronium ion that reacted, x=1.51×106 M

Substitute the equilibrium concentrations into the equilibrium-constant expression:

Ka =[H3O+][CH3NH2][CH3NH3+] =(x)2(0.10x)Assume x is small compared to 0.10 and neglect it.    =(1.51×106)2(0.10) =2.3×1011

Therefore, the equilibrium-constant for the given reaction is 2.3×1011

Conclusion

The value for the equilibrium constant for the given reaction CH3NH3+ + H2 CH3NH2 + H3O+ was calculated as Ka=2.3×10-11

(b)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

A 0.10 M solution of methylammonium chloride has a pH of 5.82

  1. (a) The value for the equilibrium constant for the  given reaction CH3NH3+ + H2 CH3NH2 + H3O+ has to be calculated
  2. (b) The Kb value for methylamine has to be calculated
  3. (c) The pH of a solution in which 0.450 mol of methylammonium chloride is added to 1.00 L of a 0.250 M solution of methylamine has to be calculated.

Concept Introduction:

Acid ionization constant Ka :

The ionization of a weak acid HA can be given as follows,

HA(aq)H+(aq)+A-(aq)

The equilibrium expression for the above reaction is given below.

Ka=[H+][A-][HA]

Where.

Ka is acid ionization constant,

[H+] is concentration of hydrogen ion

[A-] is concentration of acid anion

[HA] is concentration of the acid

Relationship between Ka and Kb :

Ka × Kb = Kw

pH definition:

The pH of a solution is defined as the negative base-10 logarithm of the hydronium ion [H3O+] concentration.

pH=-log[H3O+]

On rearranging,

[H3O+]=10pH

Answer to Problem 16.113QP

The Kb value for methylamine is 4.4×10-4

Explanation of Solution

To Calculate: The Kb value for methylamine

The Kb value for methylamine is calculated using Kw as follows,

Ka×Kb= Kw    Kb =KwKa =1.0×10142.28×1011 =4.4×104

Conclusion

The Kb value for methylamine was calculated as 4.4×10-4

(c)

Expert Solution
Check Mark
Interpretation Introduction

Interpretation:

A 0.10 M solution of methylammonium chloride has a pH of 5.82

  1. (a) The value for the equilibrium constant for the  given reaction CH3NH3+ + H2 CH3NH2 + H3O+ has to be calculated
  2. (b) The Kb value for methylamine has to be calculated
  3. (c) The pH of a solution in which 0.450 mol of methylammonium chloride is added to 1.00 L of a 0.250 M solution of methylamine has to be calculated.

Concept Introduction:

Acid ionization constant Ka :

The ionization of a weak acid HA can be given as follows,

HA(aq)H+(aq)+A-(aq)

The equilibrium expression for the above reaction is given below.

Ka=[H+][A-][HA]

Where.

Ka is acid ionization constant,

[H+] is concentration of hydrogen ion

[A-] is concentration of acid anion

[HA] is concentration of the acid

Relationship between Ka and Kb :

Ka × Kb = Kw

pH definition:

The pH of a solution is defined as the negative base-10 logarithm of the hydronium ion [H3O+] concentration.

pH=-log[H3O+]

On rearranging,

[H3O+]=10pH

Answer to Problem 16.113QP

The pH of a solution in which 0.450 mol of methylammonium chloride is added to 1.00 L of a 0.250 M solution of methylamine is 10.39

Explanation of Solution

To Calculate: The pH of a solution in which 0.450 mol of methylammonium chloride is added to 1.00 L of a 0.250 M solution of methylamine

Use equilibrium-constant expression and Ka value to calculate hydronium ion concentration.

Methylammonium chloride contains CH3NH3+ and Cl ions.

0.450 mol of methylammonium chloride gives 0.450 mol of CH3NH3+ ion and 0.450 mol of Cl ion

The concentration of CH3NH3+ is:

  [CH3NH3+] =0.450 mol1.00 L =0.450 M

The concentration of methylamine is:

[CH3NH2] =0.250 M

The Ka value for the methylammonium ion is 2.3×1011

Substitute the above values in equilibrium-constant expression.

          Ka =[H3O+][CH3NH2][CH3NH3+]   2.3×1011 =[H3O+](0.250)(0.450)     [H3O+] =(2.3×1011)(0.450)(0.250) =4.10×1011 M

Thus, the pH is calculated from the obtained hydronium ion concentration as follows,

pH =-log[H3O+] =-log(4.10×1011) =10.39

Therefore the pH of the given solution is 10.39

Conclusion

The pH of a solution in which 0.450 mol of methylammonium chloride is added to 1.00 L of a 0.250 M solution of methylamine was calculated as 10.39

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Chapter 16 Solutions

Bundle: General Chemistry, Loose-Leaf Version, 11th + LabSkills PreLabs v2 for Organic Chemistry (powered by OWLv2), 4 terms (24 months) Printed ... for Ebbing/Gammon's General Chemistry, 11th

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