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प्रश्न
Given below are the half-cell reactions:
\[\ce{Mn^2+ + 2e- -> Mn}\], E° = −1.18 V
\[\ce{2(Mn^3+ + e- -> Mn^2+)}\], E° = +1.51 V
The E° for \[\ce{3Mn^2+ -> Mn + 2Mn^3+}\] will be ______.
पर्याय
−2.69 V, the reaction will not occur.
−2.69 V, the reaction will occur.
−0.33 V, the reaction will not occur.
−0.33 V, the reaction will occur.
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उत्तर
The E° for \[\ce{3Mn^2+ -> Mn + 2Mn^3+}\] will be −2.69 V, the reaction will not occur.
Explanation:
The overall reaction is:
\[\ce{3Mn^2+ -> Mn + 2Mn^3+}\]
This involves
Oxidation: \[\ce{Mn^2+ −> Mn^3+}\], reverse of \[\ce{Mn^3+ −> Mn^2+}\]; so E° = −1.51 V
Reduction: \[\ce{Mn^2+ + 2e- −> Mn}\]; E° = −1.18 V
Now,
\[\ce{E{^{\circ}_{cell}} = E{^{\circ}_{reduction}} - E{^{\circ}_{oxidation}}}\]
= −1.18 − 1.51
= −2.69 V
Since E° < 0, the Gibbs free energy ΔG° > 0, meaning the reaction is non-spontaneous under standard conditions.
