Bundle: Chemistry: The Molecular Science, 5th, Loose-Leaf + OWLv2 with Quick Prep 24-Months Printed Access Card
Bundle: Chemistry: The Molecular Science, 5th, Loose-Leaf + OWLv2 with Quick Prep 24-Months Printed Access Card
5th Edition
ISBN: 9781305367487
Author: John W. Moore, Conrad L. Stanitski
Publisher: Cengage Learning
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Chapter 16, Problem 72QRT

(a)

Interpretation Introduction

Interpretation:

The K° value for H2(g)+I2(g)2HI(g) at 500K has to be calculated.

Concept Introduction:

The Gibbs free energy of a system is defined as the enthalpy of the system minus the product of the temperature times the entropy of the system.  The Gibbs free energy of the system is a state function as it is defined in terms of thermodynamic properties that are state functions.  The Gibbs free energy of a system is directly related to the equilibrium constant of a reaction.  The symbol for equilibrium constant is KP.

(a)

Expert Solution
Check Mark

Answer to Problem 72QRT

The K° value for H2(g)+I2(g)2HI(g) at 500K is 134.8_.

Explanation of Solution

The given reaction is shown below.

  H2(g)+I2(g)2HI(g)

The formula to calculate ΔrG° is shown below.

    ΔrG°=ΔrH°TΔrS°        (1)

Where,

  • ΔrG° is the change in standard Gibbs free energy of reaction.
  • ΔrH° is the change in standard enthalpy of reaction.
  • ΔrS° is the change in standard entropy of reaction.
  • T is the temperature.

The value of ΔrH° is calculated by the formula shown below.

    ΔrH°=nProductsΔfH°(Products)nReactantsΔfH°(Reactants)        (2)

Where,

  • ΔfH° is the change in standard enthalpy of formation.
  • nReactants is the number of moles of reactants.
  • nProducts is the number of moles of products.

The value of ΔfH° for H2(g), I2(g) and HI(g) is 0kJ/mol,62.438kJ/mol and 26.48kJ/mol respectively.

Substitute the values in equation (2) as shown below.

    ΔrH°=((nHI(g)×ΔfH°(HI(g)))((nH2(g)×ΔfH°(H2(g)))+nI2(g)×ΔfH°(I2(g))))=((2×(26.48kJ/mol))((1×0)+(1×62.438kJ/mol)))=9.478kJ/mol

The value of ΔrS° is calculated by the formula shown below.

    ΔrS°=nProductsΔfS°(Products)nReactantsΔfS°(Reactants)        (3)

Where,

  • ΔfS° is the change in standard entropy of formation.
  • nReactants is the number of moles of reactants.
  • nProducts is the number of moles of products.

The value of ΔfS° for H2(g), I2(g) and HI(g) is 130.684J/molK,260.69J/molK and 206.594J/molK respectively.

Substitute the values in equation (3) as shown below.

    ΔrS°=((nHI(g)×ΔfS°(HI(g)))((nH2(g)×ΔfS°(H2(g)))+nI2(g)×ΔfS°(I2(g))))=((2×(206.594J/molK))((1×130.684J/molK)+(1×260.69J/molK)))=21.814J/molK

The value of temperature is given as 500K.

Substitute the values of ΔrH°, ΔrS° and T in equation (1).

    ΔrG°=ΔrH°TΔrS°=9.478kJ/mol((500K)×(21.814J/molK))=9.478×103J/mol10907J/mol1kJ=103J=20385J/mol

The relation between ΔrG° and KP is shown below.

    KP=eΔrG°RT        (4)

Where,

  • ΔrG° is the change in standard Gibbs free energy of reaction.
  • R is the gas constant.
  • KP is the equilibrium constant.
  • T is the temperature.

Substitute the values of ΔrG°, R and T in equation (4).

    K°=e20385J/mol8.314J/Kmol×500K=134.8_

(b)

Interpretation Introduction

Interpretation:

The K° value for N2(g)+3H2(g)2NH3(g) at 400K has to be calculated.

Concept Introduction:

Refer to part (a).

(b)

Expert Solution
Check Mark

Answer to Problem 72QRT

The K° value for N2(g)+3H2(g)2NH3(g) at 400K is 45.8_.

Explanation of Solution

The given reaction is shown below.

  N2(g)+3H2(g)2NH3(g)

The value of ΔfH° for N2(g), H2(g) and NH3(g) is 0kJ/mol,0kJ/mol and 46.11kJ/mol respectively.

Substitute the values in equation (2) as shown below.

    ΔrH°=((nNH3(g)×ΔfH°(NH3(g)))((nN2(g)×ΔfH°(N2(g)))+nH2(g)×ΔfH°(H2(g))))=((2×(46.11kJ/mol))((1×0)+(3×0)))=92.22kJ/mol

The value of ΔfS° for N2(g), H2(g) and NH3(g) is 191.61J/molK,130.684J/molK and 192.45J/molK respectively.

Substitute the values in equation (3) as shown below.

    ΔrS°=((nNH3(g)×ΔfS°(NH3(g)))((nN2(g)×ΔfS°(N2(g)))+nH2(g)×ΔfS°(H2(g))))=((2×(192.45J/molK))((1×191.61J/molK)+(3×130.684J/molK)))=198.762J/molK

The value of temperature is given as 400K.

Substitute the values of ΔrH°, ΔrS° and T in equation (1).

    ΔrG°=ΔrH°TΔrS°=92.22kJ/mol((400K)×(198.762J/molK))=92.22×103J/mol+79504.8J/mol1kJ=103J=12715.2J/mol

Substitute the values of ΔrG°, R and T in equation (4).

    K°=e12715.2J/mol8.314J/Kmol×400K=45.8_

(c)

Interpretation Introduction

Interpretation:

The K° value for CO(g)+3H2(g)CH4(g)+H2O(g) at 800K has to be calculated.

Concept Introduction:

Refer to part (a).

(c)

Expert Solution
Check Mark

Answer to Problem 72QRT

The K° value for CO(g)+3H2(g)CH4(g)+H2O(g) at 800K is 176.1_.

Explanation of Solution

The given reaction is shown below.

  CO(g)+3H2(g)CH4(g)+H2O(g)

The value of ΔfH° for CO(g), H2(g), CH4(g) and H2O(g) is 110.525kJ/mol,0kJ/mol,74.81kJ/mol and 241.818kJ/mol respectively.

Substitute the values in equation (2) as shown below.

    ΔrH°=(((nH2O(g)×ΔfH°(H2O(g)))+(nCH4(g)×ΔfH°(CH4(g))))((nCO(g)×ΔfH°(CO(g)))+(nH2(g)×ΔfH°(H2(g)))))=(((1×(241.818kJ/mol))+(1×(74.81kJ/mol)))(1×(110.525kJ/mol)+(3×0)))=206.103kJ/mol

The value of ΔfS° for CO(g), H2(g), CH4(g) and H2O(g) is 197.674J/molK,130.684J/molK,186.264J/molK and 188.825J/molK respectively.

Substitute the values in equation (3) as shown below.

    ΔrS°=(((nH2O(g)×ΔfS°(H2O(g)))+(nCH4(g)×ΔfS°(CH4(g))))((nCO(g)×ΔfS°(CO(g)))+(nH2(g)×ΔfS°(H2(g)))))=(((1×(188.825J/molK))+(1×(186.264J/molK)))(1×(197.674J/molK)+(3×130.684J/molK)))=214.637J/molK

The value of temperature is given as 800K.

Substitute the values of ΔrH°, ΔrS° and T in equation (1).

    ΔrG°=ΔrH°TΔrS°=206.103kJ/mol((800K)×(214.637J/molK))=206.103×103J/mol+171709.6J/mol1kJ=103J=34393.4J/mol

Substitute the values of ΔrG°, R and T in equation (4).

    K°=e34393.4J/mol8.314J/Kmol×800K=176.1_

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Chapter 16 Solutions

Bundle: Chemistry: The Molecular Science, 5th, Loose-Leaf + OWLv2 with Quick Prep 24-Months Printed Access Card

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