Answer:The cell is2Fe3+ (aq) + 2I–(aq) → 2Fe2+(aq)+I2(s)E0 cell = 0.236 V0a∆r G0 =-nFE0cell =-2×0.236×96487 C mol-1 = -45541 J = -45.54 kJ mol-1
log Kc = nFE0cell2.303 × RT = 2×96487×0.2362.303×8.31×298 = 45541.8645703.1031 = 7.9854or Kc = Antilog 7.9854 or Kc = 9.62 × 107
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