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Q.You are supplied with the following substances : Copper rod, Zinc rod, Salt bridge, two glass beakers, a piece of wire, 1 M CuSO4 solution, 1 M ZnSO4 solution.

(a) Represent the cell made using the above materials. (Score : 1)
(b)
(i) Write the Nernst equation for the above cell. (Scores : 2)
(ii) Calculate the standard EMF of the cell if E-degree(Zn2+|Zn) = -0.76 V, E-degree(Cu2+|Cu) = +0.34 V. (Score : 1)
Kerala DhseKerala DHSE Plus Two Board 2015Subjective· 4mImportance★★★★★
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With copper as the cathode and zinc as the anode, the Daniell cell is written Zn(s)|Zn²⁺||Cu²⁺|Cu(s), its Nernst equation follows from combining the two electrode potentials, and its standard EMF works out to +1.10 V.

a) Representing the cell

Copper (E° = +0.34 V) has the higher (more positive) standard reduction potential, so it is the cathode (reduction occurs there); zinc (E° = −0.76 V) is the anode (oxidation occurs there). By convention (anode | anode solution || cathode solution | cathode):

Zn(s) | ZnSO4(1 M) || CuSO4(1 M) | Cu(s)

A piece of zinc rod dips in 1 M ZnSO4 in one beaker, a copper rod dips in 1 M CuSO4 in the other beaker, the two are connected internally by a salt bridge, and externally the rods are joined by a wire (through a voltmeter/load) to complete the circuit.

b) (i) Nernst equation

Overall cell reaction: Zn(s) + Cu²⁺(aq) → Zn²⁺(aq) + Cu(s), with n = 2 electrons transferred.

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