Following reactions are involved in above electrochemical cell:
At Anode: 2Al → Al3+ + 6e-
At cathode: 3I2 + 6e- → 6I-
Net Reaction: 2Al(s) + 3I2(s) → 2Al3+(aq) + 6I-(aq)
Net electron involved in above reaction = n = 6
Given: Eo cell = 2.20 v
From Nerst equation, we have
Ecell = Eo cell - [tex] \frac{RT}{nF}log( \frac{1}{[Al3+]^2[I-]^6) }[/tex]
= 2.20 - [tex] \frac{8.314X298}{6X96500}log( \frac{1}{[3.5 × 10-3 ]^2[0.015]^6) }[/tex]
= 2.1755 v
Thus, EMF generated by cell = 2.1755 v