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Q.Calculate the equilibrium constant of the following reaction -
Cu(s) + 2Ag+(aq) -> Cu2+(aq) + 2Ag(s) E(cell) standard = 0.46 V

Uttarakhand UbseUttarakhand Board Intermediate (Class 12) 2022Subjective· 3mImportance★★★★★
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Use the Nernst-equation relation at equilibrium, log K = nE(cell)/0.0591, with n = number of electrons transferred (here 2).

Reaction: Cu(s) + 2Ag+(aq) -> Cu2+(aq) + 2Ag(s); E(cell) standard = 0.46 V.

This is a redox reaction in which Cu is oxidised (Cu -> Cu2+ + 2e-) and Ag+ is reduced (2Ag+ + 2e- -> 2Ag), so the number of electrons transferred, n = 2.

At equilibrium, the relationship between the standard cell potential and the equilibrium constant is:

E(cell) standard = (0.0591/n) log K

so log K = (n x E(cell) standard) / 0.0591 = (2 x 0.46) / 0.0591 = 0.92 / 0.0591 = 15.567.

Therefore K = antilog(15.567) = approximately 3.68 x 10^15.

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