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Question

How much charge is required for the following reductions :

(i) 1 mole of Al3+ to Al ?

(ii) 1 mole of Cu2+ to Cu ?

(iii) 1 mole of MnO4 to Mn2+ ?

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Solution

(i) 1 mole of Al3+ to Al

Electrode reaction : Al3+1 mol(aq)+3e3 molAl(s)
Quantity of charge required for reduction of 1 mole of Al3+=3Faraday=3×96500 C= 2.895×105C

(ii) 1 mole Cu2+ to Cu

Electrode reaction : Cu2+1mol(aq)+2e2molCu(s)
Quantity of charge required for reducing 1 mole Cu2+toCu=2F=2×96500 C= 1.93×105C

(iii)

1 mole MnO4 to Mn2+

Electrode reaction:MnO4ox.noof Mn=71 mol+5e5 molMnO4(ox.noof Mn=2)

Quantity of charge required for reducing 1 mole MnO4 to Mn2+=5F=5×96500 = 4.825×105 C


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