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प्रश्न
Given the data at 25°C,
\[\ce{Ag + I- -> AgI + e-}\]; E° = – 0.152 V
\[\ce{Ag -> Ag+ + e-}\]; E° = – 0.800 V.
What is the value of Ksp for AgI?
\[\ce{\left(2.303 \frac{RT}{F} = 0.059 V\right)}\]
पर्याय
−8.12
+8.612
−37.83
−16.13
MCQ
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उत्तर
−16.13
Explanation:
\[\ce{Ag + I- -> AgI + e-}\]; E° = – 0.152 V ...(i)
\[\ce{Ag -> Ag+ + e-}\]; E° = – 0.800 V ...(i)
Eq. (i) can be written as:
\[\ce{AgI_{(s)} + e- -> Ag+ + I-}\]; E° = – 0.800 + (– 0.152) = – 0.952 V
Ecell = \[\ce{E^{\circ}_{cell} - \frac{2.303RT}{nF} log_10 \frac{[Ag^+][I^-]}{[AgI_{(s)}]}}\]
At equilibrium, Ecell = 0. Moreover, n = 1.
∴ 0 = \[\ce{E^{\circ}_{cell} - \frac{2.303 RT}{F} log_10 K_{sp}}\]
or, 0 = −0.952 − 0.059 log10 Ksp
or, log10 Ksp = \[\ce{-\frac{0.952}{0.059}}\]
= −16.13
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