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Question
The half reactions are:
- \[\ce{Fe^3+ + e- -> Fe^2+}\]; E° = 0.76 V
- \[\ce{Ag+ + e- -> Ag}\]; E° = 0.80 V
Calculate Kc for the following reaction at 25°C:
\[\ce{Ag+ + Fe^2+ -> Fe^3+ + Ag}\] (F = 96500 C mol−1)
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Solution
Given: The redox reaction \[\ce{Ag+ + Fe^2+ -> Fe^3+ + Ag}\]
And the half-cell reactions are
\[\ce{Fe^3+ + e- -> Fe^2+}\]; E° = 0.76 V
\[\ce{Ag+ + e- -> Ag}\]; E° = 0.80 V
n = 1
F = 96500 C/mol
\[\ce{E{^{\circ}_{cell}}}\] = 0.04 V
R = 8.314 J mol−1 K−1
T = 298 K
We know that
\[\ce{E{^{\circ}_{cell}} = E{^{\circ}_{cathode}} - E{^{\circ}_{anode}}}\]
= 0.80 − 0.76
= 0.04 V
By using the relation between \[\ce{E{^{\circ}_{cell}}}\] and Kc
\[\ce{\Delta G^{\circ} = -nFE{^{\circ}_{cell}}}\]
ΔG° = −RT ln Kc
Equating both expressions:
\[\ce{nFE{^{\circ}_{cell}} = RT ln K_c}\]
ln Kc = \[\frac{nFE{^{\circ}_{cell}}}{RT}\]
ln Kc = `(1 xx 96500 xx 0.04)/(8.314 xx 298)`
= `3860/2478.57`
ln Kc = 1.558
Kc = e1.558
Kc = 4.75
