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Q.Calculate the standard emf of the cell in which the following reaction takes place:
Zn(s) + Cu2+(aq) —→ Zn2+(aq) + Cu(s)
(E° Cu2+/Cu = 0.34 V & E° Zn2+/Zn = -0.76 V)

Kerala DhseKerala DHSE Plus Two Board 2024Subjective· 2mImportance★★★★★
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The standard emf of a cell is the difference between the standard reduction potentials of the cathode (reduction half) and the anode (oxidation half): E°cell = E°cathode − E°anode.

Given cell reaction: Zn(s) + Cu2+(aq) → Zn2+(aq) + Cu(s)

Here, Zn is oxidised (anode) and Cu2+ is reduced (cathode):

  • Anode (oxidation): Zn → Zn2+ + 2e-, E°(Zn2+/Zn) = -0.76 V …

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