Chemistry: The Molecular Nature of Matter and Change - Standalone book
Chemistry: The Molecular Nature of Matter and Change - Standalone book
7th Edition
ISBN: 9780073511177
Author: Martin Silberberg Dr., Patricia Amateis Professor
Publisher: McGraw-Hill Education
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Chapter 21, Problem 21.138P

a)

Interpretation Introduction

Interpretation:

The value of Eohalf-cell for (3) has to be calculated using Eohalf-cell of (1) and (2).

Concept introduction:

Standard reduction potential: The voltage associated with a reduction reaction at an electrode when all solutes are 1M and all gases are at 1 atm. The hydrogen electrode is called the standard hydrogen electrode (SHE).

Standard emf: Eocell is composed of a contribution from the anode and a contribution from the cathode is given by,

Ecello=Ecathodeo-Eanodeo

Where both Ecathodeo and Eanodeo are the standard reduction potentials of the electrodes.

a)

Expert Solution
Check Mark

Explanation of Solution

The given half-reactions (1) and (2) are,

Fe3+(aq)+eFe2+Ehalf-cell0(1)=+0.77VFe2+(aq)+2e-Fe(S)Ehalf-cell0(2)=-0.44V

Equation (3) is obtained by addition of Equation (1) and (2) gives,

Fe3+(aq)+e-Fe2+(aq)Ehalf-cell0(1)=+0.77VFe2+(aq)+2e-Fe(S)Ehalf-cell0(2)=-0.44V_Fe3+(aq)+2e-Fe(S)Ehalf-cell0(3)=+0.33V_

Therefore, Eohalf-cell for half-reaction (3) is +0.33V

b)

Interpretation Introduction

Interpretation:

Gibb’s free energy ΔGo has to be calculated for equation (1) and (2).

Concept Introduction:

Gibb’s free energy: The energy available to do work and also used to determine the spontaneity of a reaction. The energy released by the overall system.

The Gibb’s free energy is,

ΔGo=nFEowhere,n is the number of electrons involved,F is the Faraday constant,Eo is the standard reduction potential.

b)

Expert Solution
Check Mark

Explanation of Solution

Predict Eo value for both half-reactions:

The given half-reactions (1) and (2) are,

Fe3+(aq)+eFe2+Ehalf-cell0(1)=+0.77VFe2+(aq)+2e-Fe(S)Ehalf-cell0(2)=-0.44V

For equation (1),

ΔGo=-nFEo=-(1 mole e-)(96,500 Cmol e- )(+0.77V)(JC.V)ΔGo(1)= -74305J=-7.4×104J

For equation (2),

ΔGo=-nFEo=-(2 mole e-)(96,500 Cmol e- )(0.44V)(JC.V)ΔGo(1)= +84920J=+8.5×104J

Therefore, the Gibb’s free energy ΔGo for equation (1) and (2) are -7.4×104J and +8.5×104J, respectively.

c)

Interpretation Introduction

Interpretation:

Gibb’s free energy ΔGo of equation (3) has to be calculated for equation (1) and (2).

Concept Introduction:

Gibb’s free energy: The energy available to do work and also used to determine the spontaneity of a reaction. The energy released by the overall system.

The Gibb’s free energy is,

ΔGo=nFEowhere,n is the number of electrons involved,F is the Faraday constant,Eo is the standard reduction potential.

c)

Expert Solution
Check Mark

Explanation of Solution

The given half-reactions (1) and (2) are,

Fe3+(aq)+eFe2+Ehalf-cell0(1)=+0.77VFe2+(aq)+2e-Fe(S)Ehalf-cell0(2)=-0.44V

As known,

ΔG1o=-nFE1oandΔG2o=-nFE2oΔG3o=-nFE3o(a)whereE3o=E1o+E2o(b)

By substituting (b) into (a) gives,

ΔG3o=-nF(E1o+E2o)ΔG3o=(-nFE1o)+(-nFE2o)ΔG3o=ΔG1o+ΔG2o

The Eohalf-cell for equation (3) is obtained by addition of (1) and (2), whereas the addition of Gibb’s free energy of each half-reaction (1) and (2) gives, the value of equation of (3).

Thus,

The calculated Gibb’s free energy ΔGo values for equation (1) and (2) are -7.4×104J and +8.5×104J, respectively

Hence,

ΔG3o=ΔG1o+ΔG2o=(-7.4×104J)+(+8.5×104J)=1.1×104J

Therefore, the calculated ΔG3o value for equation (3) is 1.1×104J.

d)

Interpretation Introduction

Interpretation:

The Eohalf-cell value for equation (3) has to be calculated using its Gibb’s free energy ΔGo.

Concept Introduction:

Gibb’s free energy: The energy available to do work and also used to determine the spontaneity of a reaction. The energy released by the overall system.

The Gibb’s free energy is,

ΔGo=nFEowhere,n is the number of electrons involved,F is the Faraday constant,Eo is the standard reduction potential.

d)

Expert Solution
Check Mark

Explanation of Solution

The given half-reactions (1) and (2) are,

Fe3+(aq)+eFe2+Ehalf-cell0(1)=+0.77VFe2+(aq)+2e-Fe(S)Ehalf-cell0(2)=-0.44V

As known,

ΔG1o=-nFE1oandΔG2o=-nFE2oΔG3o=-nFE3o(a)whereE3o=E1o+E2o(b)

By substituting (b) into (a) gives,

ΔG3o=-nF(E1o+E2o)ΔG3o=(-nFE1o)+(-nFE2o)ΔG3o=ΔG1o+ΔG2o

The Eohalf-cell for equation (3) is obtained by addition of (1) and (2), whereas the addition of Gibb’s free energy of each half-reaction (1) and (2) gives, the value of equation of (3).

Thus,

The calculated Gibb’s free energy ΔGo values for equation (1) and (2) are -7.4×104J and +8.5×104J, respectively

Hence,

ΔG3o=ΔG1o+ΔG2o=(-7.4×104J)+(+8.5×104J)=1.1×104J

Thus, the calculated ΔG3o value for equation (3) is 1.1×104J.

Calculation for Eohalf-cell equation (3) is,

ΔGo=-nFEo1.1×104J=-(3 mole e-)(96,500 Cmol e- )(Eo)(JC.V)(1.1×104J-(3 mole e-)(96,500 Cmol e- )(JC.V))1.1×1042.8×105V=-0.039V

Therefore, the calculated value of Eohalf-cell value for equation (3) is -0.039V

e)

Interpretation Introduction

Interpretation:

The relationship between Eohalf-cell values for equation (1) and (2) and the Eohalf-cell value for equation (3) has to be interpreted.

Concept Introduction:

Standard reduction potential: The voltage associated with a reduction reaction at an electrode when all solutes are 1M and all gases are at 1 atm. The hydrogen electrode is called the standard hydrogen electrode (SHE).

Standard emf: Eocell is composed of a contribution from the anode and a contribution from the cathode is given by,

Ecello=EcathodeoEanodeo

Where both Ecathodeo and Eanodeo are the standard reduction potentials of the electrodes.

e)

Expert Solution
Check Mark

Explanation of Solution

The given half-reactions (1) and (2) are,

Fe3+(aq)+eFe2+Ehalf-cell0(1)=+0.77VFe2+(aq)+2e-Fe(S)Ehalf-cell0(2)=-0.44V

Equation (3) is obtained by addition of Equation (1) and (2) gives,

Fe3+(aq)+e-Fe2+(aq)Ehalf-cell0(1)=+0.77VFe2+(aq)+2e-Fe(S)Ehalf-cell0(2)=-0.44V_Fe3+(aq)+2e-Fe(S)Ehalf-cell0(3)=+0.33V_

From the calculation method,

The addition of equation (1) and (2) gives the overall reaction of (3), that indicates the Eohalf-cell value for (3) is

Eohalf-cell(3)=Eohalf-cell(1)+Eohalf-cell(2)

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Chapter 21 Solutions

Chemistry: The Molecular Nature of Matter and Change - Standalone book

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