Advertisements
Advertisements
Question
For the cell:
Zn | Zn2+ (a = 1) || Cu2+ (a = 1) | Cu
Given that \[\ce{E^{\circ}_{Zn/Zn^{2+}}}\] = 0.761 volt; \[\ce{E^{\circ}_{Cu^{2+}/Cu}}\] = +0.339 volt
- Write the cell reaction.
- Calculate the emf and free energy change at 298 K involved in the cell.
[Faraday’s constant, F = 96500 coulomb mol−1]
Advertisements
Solution
Given: Zn | Zn2+ (a = 1) || Cu2+ (a = 1) | Cu
\[\ce{E^{\circ}_{Zn/Zn^{2+}}}\] = 0.761 volt;
\[\ce{E^{\circ}_{Cu^{2+}/Cu}}\] = +0.339 volt
Temperature (T) = 298 K
Faraday’s constant, F = 96500 C mol−1
a. Since zinc has a more negative standard potential, it gets oxidised:
\[\ce{Zn_{(s)} + Cu^{2+}_{ (aq)} −> Zn^{2+}_{ (aq)} + Cu_{(s)}}\]
This is the spontaneous cell reaction.
b. \[\ce{E^{\circ}_{cell} = E^{\circ}_{cathode} - E^{\circ}_{anode}}\]
= 0.339 V − (−0.761 V)
= 1.100 V
Use the formula
\[\ce{\Delta G^{\circ} = -nFE^{\circ}_{cell}}\]
Where:
n = 2 electrons transferred
F = 96500 C mol−1
\[\ce{E^{\circ}_{cell}}\] = 1.100 V
ΔG° = −2 × 96500 × 1.100
= −212300 J mol−1
= −212.3 kJ mol−1
