Question

Calculate the value of ΔG° for the following cell at 25°C.

\[\ce{Zn_{(s)}/Zn^2+(1M) || Sn^2+(1M)/Sn_{(s)}}\]

Given: \[\ce{E^{\circ}_{({Zn^{2+}/{Zn}})}}\] = −0.76 V, \[\ce{E^{\circ}_{({Sn^{2+}/{Sn}})}}\] = −0.14 V

1 faraday = 96,500 coulombs.

Answer 1

Given: \[\ce{E^{\circ}_{({Zn^{2+}/{Zn}})}}\] = −0.76 V

\[\ce{E^{\circ}_{({Sn^{2+}/{Sn}})}}\] = 0.14 V

Formula: \[\ce{E{^{\circ}_{cell}} = E{^{\circ}_{cathode}} - E{^{\circ}_{anode}}}\]

= −0.14 − (−0.76)

= −0.14 + 0.76

= 0.62 V

ΔG° = −nFE°_cell

= −2 × 96500 × 0.62

= −119,660 J/mol

ΔG° = `(−119,660)/(1000)`

= −119.66 kJ/mol