Chemistry & Chemical Reactivity
Chemistry & Chemical Reactivity
9th Edition
ISBN: 9781305176461
Author: Kotz
Publisher: Cengage
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Chapter 18.7, Problem 6CYU

(a)

Interpretation Introduction

Interpretation:

The ΔrG° for the given reaction N2(g)+O2(g)2NO(g) should be calculated using standard free energies of reactant and product formation and should be identified that whether reaction is reactant or product favoured.

Concept introduction:

The Gibbs free energy or the free energy change is a thermodynamic quantity represented by ΔrGo. It can be calculated in a similar manner as entropy and enthalpy.  The expression for the free energy change is:

  ΔrG°fG°(products)fG°(reactants)

ΔrGo gets related to the reaction quotient Q by the expression ΔrG = ΔrG°+ RT lnQ

For a general reaction, aA + bBcC + dD

  Q = [C]c[D]d[A]a[B]b

(a)

Expert Solution
Check Mark

Answer to Problem 6CYU

The ΔrG° for the given reaction is 173.2 kJ/mol- rxn. The ΔrG° value is positive, thus the reaction is reactant favoured.

Explanation of Solution

The ΔrG° for the given reaction is calculated below.

Given: N2(g)+O2(g)2NO(g)

The Appendix L was referred for the values of standard free energy.

The ΔrG° for NO(g) is 86.58 kJ/mol

The ΔrG° for N2(g) is 0 kJ/mol

The ΔrG° for O2(g) is 0 kJ/mol

  ΔrG°fG°(products)fG°(reactants)

  ΔrG°[(2 mol NO(g)/mol-rxn)ΔfG°[NO(g)]-[(1 mol N2(g)/mol-rxn)ΔfG°[N2(g)]+(1 mol O2(g)/mol-rxn)ΔfG°[O2(g)]]] 

Substituting the free energy values,

  ΔrG°=[(2 mol NO(g)/mol-rxn)(86.58 kJ/mol)-[(1 mol N2(g)/mol-rxn)(0)+(1 mol O2(g)/mol-rxn)(0)]] = 173.2 kJ/mol- rxn

Therefore, the reaction is reactant favoured since the value is positive.

(b)

Interpretation Introduction

Interpretation:

The ΔrG° for the reaction when 0.10 atmN2,0.10atm O2and0.010atm NO are mixed should be calculated and should be identified that whether this reaction is spontaneous or not under such given conditions.

Concept introduction:

The Gibbs free energy or the free energy change is a thermodynamic quantity represented by ΔrGo. It can be calculated in a similar manner as entropy and enthalpy.  The expression for the free energy change is:

  ΔrG°fG°(products)fG°(reactants)

ΔrGo gets related to the reaction quotient Q by the expression ΔrG = ΔrG°+ RT lnQ

For a general reaction, aA + bBcC + dD

  Q = [C]c[D]d[A]a[B]b

(b)

Expert Solution
Check Mark

Answer to Problem 6CYU

The ΔrGo for the given reaction of formation of nitrogen monoxide is 161.7 kJ/mol- rxn. The reaction will proceed not spontaneously since the value is positive.

Explanation of Solution

The ΔrGo for the given reaction is calculated below,

Given: 0.10 atmN2,0.10atm O2and0.010atm NO are mixed.

ΔrGo is related to the reaction quotient Q by the expression,

  ΔrG = ΔrG°+RT lnQ

  ΔrG = ΔrG°+RT ln(PN2PO2PNO2)

Substituting the respective values,

ΔrG = 173.2 kJ/mol- rxn +(0.08314 kJ/K)(298.15)ln((0.10)(0.10)(0.010)2)=161.7 kJ/mol- rxn

Thus the reaction will proceed not spontaneously since the value is positive

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Chapter 18 Solutions

Chemistry & Chemical Reactivity

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