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 19, Problem 11E

(a)

Interpretation Introduction

Interpretation: Reaction of commercial production of hydrogen is given. The value of ΔH° and ΔS° is to be calculated for the given reaction. The temperature at which this reaction is favored is to be calculated.

Concept introduction: The expression to calculate ΔH° is,

ΔH°=npΔH°(product)nfΔH°(reactant)

The expression to calculate ΔS° is,

ΔS°=npΔS°(product)nfΔS°(reactant)

A reaction is said to be favored if the value of ΔG° is negative.

To determine: The value of ΔH° and ΔS° for the given reaction.

(a)

Expert Solution
Check Mark

Explanation of Solution

Explanation

The stated reaction is,

CH4(g)+H2O(g)CO(g)+3H2(g)

Refer to Appendix 4

The value of ΔH°(kJ/mol) for the given reactant and product is,

Molecules ΔH°(kJ/mol)
CH4(g) 75
H2O(g) 242
CO(g) 110.5
H2(g) 0

The formula of ΔH° is,

ΔH°=npΔH°(product)nfΔH°(reactant)

Where,

  • ΔH° the standard enthalpy of reaction.
  • np is the number of moles of each product.
  • nr is the number of moles each reactant.
  • ΔH°(product) is the standard enthalpy of product at a pressure of 1atm .
  • ΔH°(reactant) is the standard enthalpy of reactant at a pressure of 1atm .

Substitute all the values from the table in the above equation.

ΔH°=npΔH°(product)nfΔH°(reactant)=[3(0)+(110.5){(75)+(242)}]kJ=206.5kJ_

The value of ΔS° for the given reaction is 216J/K_ .

Explanation

Refer to Appendix 4

The value of ΔS°(J/Kmol) for the given reactant and product is,

Molecules ΔS°(kJ/mol)
CH4(g) 186
H2O(g) 189
CO(g) 198
H2(g) 131

The formula of ΔS° is,

ΔS°=npΔS°(product)nfΔS°(reactant)

Where,

  • ΔS° is the standard entropy of reaction.
  • np is the number of moles of each product.
  • nr is the number of moles each reactant.
  • ΔS°(product) is the standard entropy of product at a pressure of 1atm .
  • ΔS°(reactant) is the standard entropy of reactant at a pressure of 1atm .

Substitute all the values from the table in the above equation.

ΔS°=npΔS°(product)nfΔS°(reactant)=[3(131)+(198){(186)+(189)}]J/K=216J/K_

(b)

Interpretation Introduction

Interpretation: Reaction of commercial production of hydrogen is given. The value of ΔH° and ΔS° is to be calculated for the given reaction. The temperature at which this reaction is favored is to be calculated.

Concept introduction: The expression to calculate ΔH° is,

ΔH°=npΔH°(product)nfΔH°(reactant)

The expression to calculate ΔS° is,

ΔS°=npΔS°(product)nfΔS°(reactant)

A reaction is said to be favored if the value of ΔG° is negative.

To determine: The temperature at which this reaction is favored.

(b)

Expert Solution
Check Mark

Explanation of Solution

Explanation

The value of ΔH is 206.5kJ .

The value of ΔS is 216J/K .

The conversion of kilo-joule (kJ) into joule (J) is done as,

1kJ=103J

Hence,

The conversion of 206.5kJ into joule is,

206.5kJ=(206.5×103)J=206.5×103J

Formula

The formula of ΔG is,

ΔG=ΔH°TΔS°

Where,

  • ΔH° is the standard enthalpy of reaction.
  • ΔG° is the free energy change.
  • T is the given temperature.
  • ΔS° is the standard entropy of reaction.

At equilibrium, the value of ΔG is zero.

Substitute the values of ΔG°,ΔH° and ΔS° in the above equation.

ΔG=ΔH°TΔS°0=(206.5×103J)T(216J/K)T=956K_

The reaction will be favored if the temperature is greater than 956K .

Conclusion

The required value of ΔS° for the given reaction is 216J/K_ and ΔH° is 206.5kJ_ . The temperature at which this reaction is favored is 956K_

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Chapter 19 Solutions

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

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