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Q.Establish a relation between concentrations of the electrolytes and cell potential of a cell. OR Discuss the variations of molar and equivalent conductances with dilution.

Manipur CohsemCOHSEM Manipur Higher Secondary Board 2024Subjective· 5mImportance★★★★★
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This question offers a choice between deriving the Nernst equation (primary) or discussing how molar/equivalent conductance vary with dilution (the alternative). Both are answered below.

(Primary) — Relation between electrolyte concentration and cell potential (the Nernst equation):

For a general cell reaction, ΔG=ΔG°+RTln⁡Q\Delta G = \Delta G° + RT\ln Q, where QQ is the reaction quotient in terms of the concentrations/activities of the species involved. Using ΔG=−nFEcell\Delta G = -nFE_{cell} and ΔG°=−nFE°cell\Delta G° = -nFE°_{cell}:

−nFEcell=−nFE°cell+RTln⁡Q-nFE_{cell} = -nFE°_{cell} + RT\ln Q

Ecell=E°cell−RTnFln⁡QE_{cell} = E°_{cell} - \frac{RT}{nF}\ln Q

Converting to base-10 log and substituting R=8.314 J K−1mol−1R=8.314\ J\,K^{-1}mol^{-1}, F=96500 C mol−1F=96500\ C\,mol^{-1}, T=298 KT=298\ K:

Ecell=E°cell−2.303×8.314×298n×96500log⁡Q=E°cell−0.0591nlog⁡QE_{cell} = E°_{cell} - \frac{2.303 \times 8.314 \times 298}{n \times 96500}\log Q = E°_{cell} - \frac{0.0591}{n}\log Q

This is the Nernst equation — it shows that as the concentrations of the electrolytes (reactants/products of the cell reaction, appearing in QQ) change, the cell potential EcellE_{cell} deviates from the standard value E°cellE°_{cell} accordingly; e.g. increasing product-ion concentration or decreasing reactant-ion concentration lowers EcellE_{cell}.

OR — Variation of molar and equivalent conductance with dilution:

Both molar conductivity (Λm\Lambda_m) and equivalent conductivity increase on dilution, but for different underlying reasons depending on the electrolyte type:

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