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प्रश्न
Calculate the standard cell potential of a galvanic cell in which the following reaction takes place:
\[\ce{Fe{^{2+}_{(aq)}} + Ag{^{+}_{(aq)}} -> Fe{^{3+}_{(aq)}} + Ag_{(s)}}\]
Calculate the ΔrG° and equilibrium constant of the reaction.
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उत्तर
A cell can be represented as follows:
\[\ce{Fe{^{2+}_{(aq)}} | Fe{^{3+}_{(aq)}} || Ag{^{+}_{(aq)}} | Ag_{(s)}}\]
The cell reaction is as follows:
\[\ce{Fe{^{2+}_{(aq)}} + Ag{^+_{(aq)}} -> Fe{^{3+}_{(aq)}} + Ag_{(s)}}\]
So, n = 1
\[\ce{E{^{\circ}_{{cell}}} = E{^{\circ}_{Ag^+/Ag}} - E{^{\circ}_{{Fe^{3+}/Fe^{2+}}}}}\]
= +0.80 − (+0.77)
= +0.03 V
\[\ce{\Delta_{r}G^{\circ} = -nFE{^{\circ}_{cell}}}\]
= −1 × 96500 × 0.03
= −2895 CV mol−1
= −2895 J mol−1
= −2.895 kJ mol−1
∵ ΔrG° = − 2.303 RT log10 K
∴ −2895 = −2.303 × 8.314 × 298 × log10 K
or, log10 K = `2895/(2.303 xx 8.314 xx 298)`
= 0.5074
∴ K = antilog (0.5074)
K = 3.22
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