Quantitative Chemical Analysis 9e And Sapling Advanced Single Course For Analytical Chemistry (access Card)
Quantitative Chemical Analysis 9e And Sapling Advanced Single Course For Analytical Chemistry (access Card)
9th Edition
ISBN: 9781319090241
Author: Daniel C. Harris, Sapling Learning
Publisher: W. H. Freeman
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Chapter 14, Problem 14.41P

(a)

Interpretation Introduction

Interpretation:

The half-reaction and Nernst equation for each half-cell has to be written.

Concept introduction:

Nernst equation can be used to determine the cell potential at any instant, the difference from the standard state.

Ecell = Ecello - (RTnF)lnQ

Where:

Ecell = cell potential under nonstandard conditions

Ecello = cell potential under standard conditions

R = gas constant, which is 8.31 (volt-coulomb)/(mol-K)

T = temperature (kelvin), which is generally 298°K (77°F/25°C) 

n = number of moles of electrons exchanged in the electrochemical reaction

F = Faraday's constant, 96500 coulombs/mol

Q = reaction quotient, which is the equilibrium expression with initial concentrations rather than equilibrium concentrations

(b)

Interpretation Introduction

Interpretation:

The half-reaction and Nernst equation and A and B value have to be calculated.

Concept introduction:

Nernst equation can be used to determine the cell potential at any instant, the difference from the standard state.

Ecell = Ecello - (RTnF)lnQ

Where:

Ecell = cell potential under nonstandard conditions

Ecello = cell potential under standard conditions

R = gas constant, which is 8.31 (volt-coulomb)/(mol-K)

T = temperature (kelvin), which is generally 298°K (77°F/25°C) 

n = number of moles of electrons exchanged in the electrochemical reaction

F = Faraday's constant, 96500 coulombs/mol

Q = reaction quotient, which is the equilibrium expression with initial concentrations rather than equilibrium concentrations

(c)

Interpretation Introduction

Interpretation:

The electron flow direction has to be found.

Concept introduction:

Nernst equation can be used to determine the cell potential at any instant, the difference from the standard state.

Ecell = Ecello - (RTnF)lnQ

Where:

Ecell = cell potential under nonstandard conditions

Ecello = cell potential under standard conditions

R = gas constant, which is 8.31 (volt-coulomb)/(mol-K)

T = temperature (kelvin), which is generally 298°K (77°F/25°C) 

n = number of moles of electrons exchanged in the electrochemical reaction

F = Faraday's constant, 96500 coulombs/mol

Q = reaction quotient, which is the equilibrium expression with initial concentrations rather than equilibrium concentrations

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Chapter 14 Solutions

Quantitative Chemical Analysis 9e And Sapling Advanced Single Course For Analytical Chemistry (access Card)

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