Chemistry: Atoms First
Chemistry: Atoms First
3rd Edition
ISBN: 9781259638138
Author: Julia Burdge, Jason Overby Professor
Publisher: McGraw-Hill Education
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Chapter 25, Problem 25.97QP
Interpretation Introduction

Interpretation:

The equilibrium constant at 25Cand100C for the formation of carbon monoxide from coke has to be calculated.

Concept introduction:

Equilibrium constant: In a reversible chemical reaction the relationship between the amounts of starting materials and products present at equilibrium in a given temperature is given by the equilibrium constant.

To calculate: the equilibrium constant for the formation of carbon monoxide from coke at given temperatures.

Expert Solution & Answer
Check Mark

Answer to Problem 25.97QP

  • The equilibrium constant at 25Cis9.61×1022 .
  • The equilibrium constant at 100Cis1.2×1015 .

Explanation of Solution

The relationship between equilibrium constant and Gibb’s free energy is given by

ΔG=RTlnKΔGchangeinGibb'sfreeenrgyRGasconstantKequilibriumconstantandTtemperature

The relationship between Gibb’s free energy, enthalpy and entropy is given by

ΔG=ΔHTΔSΔGchangeinGibb'sfreeenrgyΔHchangeinenthalpyΔSchangeinentropyandTtemperature

First calculate ΔG and then calculate the equilibrium constant by the equation given above.

For the formation of carbon monoxide from coke, the change in enthalpy is calculated as follows

ΔH° = 2ΔH°f [CO(g)-{ΔH°f [C(s)] + ΔH°f [CO2 (g)]}ΔH°=(2)(-110.5 kJ/mol) - (0 + -393.5 kJ/mol) = 172.5 kJ/mol

For the formation of carbon monoxide from coke, the change in entropy is calculated as follows

ΔS° = 2ΔS° [CO(g)]-{S° [C(s)] + S°[CO2 (g)]}ΔS° = (2)(197.9 J/K×mol) - (5.69 J/K×mol + 213.6 J/K.mol)    = 176.5 J/K×mol

For the formation of carbon monoxide from coke, the change in enthalpy and change in entropy was calculated.

Calculate the change in Gibb’s free energy for the formation of carbon monoxide at 25C

ΔG° = ΔH° - TΔS°= (172.5×103 J /mol) - (298 K)(176.5 J /K×mol)= 1.199×105 J /mol

Calculate the change in Gibb’s free energy for the formation of carbon monoxide at 100oC

ΔG° = ΔH° - TΔS°= (172.5×103 J /mol) - (373 K)(176.5 J /K×mol)= 1.07×105 J /mol

For the formation of carbon monoxide from coke, the change in Gibb’s free energy was calculated at 25C and 100C .

The relationship between equilibrium constant and Gibb’s free energy is given by

ΔG=RTlnK

The equilibrium constant at 25C

K=e-ΔGoRT=e-(1.99×105J/mol)(8.314J/mol)(298K)=9.61×10-22

The equilibrium constant at 100C

K=e-ΔGoRT=e-(1.07×105J/mol)(8.314J/mol)(373K)=1.2×10-15

For the formation of carbon monoxide from coke, the equilibrium constant was calculated at 25C and 100C .

Conclusion

The equilibrium constant for the formation of carbon monoxide from coke at 25Cand100C was calculated.

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Chapter 25 Solutions

Chemistry: Atoms First

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