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Q.If at 25 degrees C, the standard emf of the cell Zn(s) | Zn2+(1M) || Cu2+(0.1M) | Cu(s) is 1.3 volt, calculate the emf of the cell.

Odisha ChseOdisha CHSE +2 Science Board Exam 2020Subjective· 2mImportance★★★★★
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Apply the Nernst equation for the cell reaction Zn + Cu2+ -> Zn2+ + Cu (n = 2) to find the emf under the given (non-standard Cu2+) concentration.

For the cell Zn(s) | Zn2+(1M) || Cu2+(0.1M) | Cu(s), the overall cell reaction is:

Zn(s) + Cu2+(aq) -> Zn2+(aq) + Cu(s), with n = 2 electrons transferred.

The Nernst equation at 25degC (298 K) is:

Ecell=Ecell∘−0.0591nlog⁡[Zn2+][Cu2+]E_{cell} = E^\circ_{cell} - \dfrac{0.0591}{n}\log\dfrac{[Zn^{2+}]}{[Cu^{2+}]}

Substituting E°cell = 1.3 V, n = 2, [Zn2+] = 1 M, [Cu2+] = 0.1 M:

Ecell=1.3−0.05912log⁡10.1=1.3−0.02955×log⁡(10)=1.3−0.02955×1E_{cell} = 1.3 - \dfrac{0.0591}{2}\log\dfrac{1}{0.1} = 1.3 - 0.02955 \times \log(10) = 1.3 - 0.02955 \times 1

Ecell=1.3−0.0296=1.2704 V≈1.27 VE_{cell} = 1.3 - 0.0296 = 1.2704\ \text{V} \approx 1.27\ \text{V}

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