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Q.The standard electrode potential for Daniel cell is 1.1 V. Calculate the standard Gibbs energy for the reaction : Zn(s)+Cu2+(aq)→Zn2+(aq)+Cu(s)\text{Zn(s)} + \text{Cu}^{2+}\text{(aq)} \rightarrow \text{Zn}^{2+}\text{(aq)} + \text{Cu(s)}

Karnataka PUCKarnataka II PUC Board 2025Subjective· 3mImportance★★★★★
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With n=2n=2 electrons, the standard Gibbs energy of the Daniell-cell reaction is −212.3 kJ mol−1-212.3\,\text{kJ mol}^{-1}.

Formula:

ΔrG∘=−nFEcell∘\Delta_r G^\circ = -nFE^\circ_{cell}

Given: for Zn(s)+Cu2+(aq)→Zn2+(aq)+Cu(s)\text{Zn(s)} + \text{Cu}^{2+}\text{(aq)} \rightarrow \text{Zn}^{2+}\text{(aq)} + \text{Cu(s)}, two electrons are transferred so n=2n = 2; F=96500 C mol−1F = 96500\,\text{C mol}^{-1}; Ecell∘=1.1 VE^\circ_{cell} = 1.1\,\text{V}.

Substitute: …

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