Answer:
2.9×10^65
Explanation:
E°cell= E°cathode- E°anode
E°cell= 1.61 V- 0.32 V= 1.29V
The anode is oxidized while the cathode is reduced hence Bi/BiO+ is the anode while Ce4+/Ce3+ is the cathode
Recall that
R=8.314JK-1
F= 96500 C
n=3 moles of electrons
T=298K
E°cell= RT/nF ln K
lnK= E°cell × nF/RT
ln K = 1.29 × 3×96500/8.314×298
ln K= 150.7
K= 2.9×10^65
