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Q.Calculate the emf of the following cell at 298 K:
Cr(s) | Cr3+(0.1M) || Fe2+(0.01M) | Fe(s)
(Given Ecell(standard) = +0.30 V)

Jharkhand JacJAC Intermediate Board 2025Subjective· 5mImportance★★★★★
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Applying the Nernst equation to the balanced 6-electron cell reaction, with the given concentrations and standard cell potential, gives Ecell of about 0.26 V.

The cell Cr(s) | Cr3+(0.1M) || Fe2+(0.01M) | Fe(s) has:

Anode (oxidation): Cr→Cr3++3e−\text{Cr} \rightarrow \text{Cr}^{3+} + 3e^- (x2)

Cathode (reduction): Fe2++2e−→Fe\text{Fe}^{2+} + 2e^- \rightarrow \text{Fe} (x3)

Overall balanced reaction (n = 6 electrons):

2Cr(s)+3Fe2+(aq)→2Cr3+(aq)+3Fe(s)2\text{Cr}(s) + 3\text{Fe}^{2+}(aq) \rightarrow 2\text{Cr}^{3+}(aq) + 3\text{Fe}(s)

Nernst equation at 298 K: …

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