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Q.(a) Calculate the standard Gibbs free energy (ΔG°) for the reaction: Zn(s) + 2Ag+(aq) → 2Ag(s) + Zn2+(aq). Given: E°(Zn2+/Zn) = -0.76 V and E°(Ag+/Ag) = +0.80 V.

(b) Why does the conductivity of a solution decrease with increasing dilution?
Tripura TbseHigher Secondary (+2 Stage) Examination 2026Subjective· 3mImportance★★★★★
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E-cell-standard = 1.56 V and n = 2, so delta-G-standard = -nFE-cell-standard is approximately -301 kJ/mol (spontaneous); conductivity (kappa) falls with dilution simply because there are fewer ions per unit volume, even though molar conductivity rises.

(a) Zn(s) + 2Ag+(aq) -> 2Ag(s) + Zn2+(aq)

E-cell-standard = E-standard(cathode, reduction) - E-standard(anode, reduction) = E-standard(Ag+/Ag) - E-standard(Zn2+/Zn) = 0.80 V - (-0.76 V) = 1.56 V

Number of electrons transferred, n = 2 (Zn -> Zn2+ + 2e-; 2Ag+ + 2e- -> 2Ag)

Delta-G-standard = -nFE-cell-standard = -(2)(96500 C/mol)(1.56 V) = -301,080 J/mol, approximately -301.08 kJ/mol

(The negative sign confirms the reaction is spontaneous as written.)

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