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NEET CHEMISTRYElectrochemistryEasy

Question

Given the following cell reaction: 2Fe3+(aq)+2I(aq)2Fe2+(aq)+I2(aq)2\text{Fe}^{3+}\text{(aq)} + 2\text{I}^-\text{(aq)} \rightarrow 2\text{Fe}^{2+}\text{(aq)} + \text{I}_2\text{(aq)} Ecell=0.24 VE^\circ_{\text{cell}} = 0.24 \text{ V} at 298 K298 \text{ K}. The standard Gibbs energy ΔrG\Delta_r G^\circ of the cell reaction is: [Given: F=96500 C mol1F = 96500 \text{ C mol}^{-1}]

A

23.16 kJ mol123.16 \text{ kJ mol}^{-1}

B

46.32 kJ mol1-46.32 \text{ kJ mol}^{-1}

C

23.16 kJ mol1-23.16 \text{ kJ mol}^{-1}

D

46.32 kJ mol146.32 \text{ kJ mol}^{-1}

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