If
$[H^{+}]$ changed from 1M to $10^{- 4}$ M
Find change in electrode potential $E_{M n O_{4}^{-} / M n^{+ 2}}^{o}, (\frac{R T}{F} = 0.059)$

$[A s s u m e [M n {O_{4}}^{-}] = [M n^{+ 2}] = 1 M]$

0.3767 V

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0.3776 V

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0.0376 V

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0.3771 V

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Solution

The correct option is C 0.0376 V

$5 e^{-} + 8 H^{+} + M n 1 M O_{4}^{-} \to M n 1 M + 4 H_{2} O$

$E_{1} = E^{o} - \frac{0.59}{5} {log}_{10} [\frac{1}{{[H^{+}]}^{8}} \times \frac{[M n^{+ 2}]}{[M n O_{4}^{-}}]$

$= E^{o} - \frac{0.059}{5} {log}_{10} [\frac{1}{{(1)}^{8}}] = E^{o}$

$= E_{2} = E^{o} - \frac{0.059}{5} {log}_{10} ⎡ ⎣ \frac{1}{{(10^{- 4})}^{8}} \times \frac{[M n^{+ 2}]}{[M n O_{4}^{-}]} ⎤ ⎦$

$= E^{o} - \frac{0.059}{5} {log}_{10} [10^{32}]$

$= E^{o} - \frac{0.059}{5} \times 32$

$E_{1} - E_{2} = E^{o} + \frac{0.059}{5} \times 32$

=0.3776V

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Q. If

$[H^{+}]$ changed from 1M to $10^{- 4}$ M
Find change in electrode potential $E_{M n O_{4}^{-} / M n^{+ 2}}^{o}, (\frac{R T}{F} = 0.059)$

$[A s s u m e [M n {O_{4}}^{-}] = [M n^{+ 2}] = 1 M]$

The magnitude of the change in oxidising power of the $M n O_{4}^{-} / M n^{2 +}$ couple is $x \times 10^{- 4} V$ , if the $H^{+}$ concentration is decreased from $1 M$ to $10^{- 4} M$ at $25 ° C$ . (Assume concentration of $M n O_{4}^{-}$ and $M n^{2 +}$ to be same on change in $H^{+}$ concentration). The value of $x$ is . (Round off to the nearest integer).