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Write Brief Answer · Q15

Q.Is it possible to store copper sulphate in an iron vessel for a long time? Given: ECu2+/Cuo=0.34E^{o}_{\text{Cu}^{2+}/\text{Cu}} = 0.34 V and EFe2+/Feo=−0.44E^{o}_{\text{Fe}^{2+}/\text{Fe}} = -0.44 V.

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Step 1. Storing CuSO4 in an iron vessel risks the reaction Fe(s)+Cu2+(aq)→Fe2+(aq)+Cu(s)\text{Fe(s)}+\text{Cu}^{2+}\text{(aq)} \rightarrow \text{Fe}^{2+}\text{(aq)}+\text{Cu(s)}, where iron is oxidised (anode) and Cu²⁺ is reduced (cathode).

Step 2. Ecello=Eredo(Cu2+/Cu)+Eoxo(Fe/Fe2+)=0.34+(−(−0.44))=0.34+0.44=0.78E^{o}_{cell} = E^{o}_{red}(\text{Cu}^{2+}/\text{Cu}) + E^{o}_{ox}(\text{Fe}/\text{Fe}^{2+}) = 0.34 + (-(-0.44)) = 0.34+0.44 = 0.78 V. …

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