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Question

Identify the correct balanced redox reaction by using ion-electron method:
BiO3+Mn2+Bi3++MnO4+H2O

A
5BiO3+22H++Mn2+5Bi3++7H2O+MnO4
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B
5BiO3+14H++2Mn2+5Bi3++7H2O+2MnO4
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C
2BiO3+4H++Mn2+2Bi3++2H2O+MnO4
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D
6BiO3+12H++3Mn2+6Bi3++6H2O+3MnO4
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Solution

The correct option is B 5BiO3+14H++2Mn2+5Bi3++7H2O+2MnO4
Reduction half cell :
+5BiO3Bi3+
Oxidation half cell :
Mn2++7MnO4
Taking reduction half cell Bi is balanced. So add 3 H2O
in product side. Now to balance hydrogen 6 H+ have to add in reactant side.
BiO3+6H+Bi3++3H2O
Now balance the charge by adding 2 e in reactant side:
BiO3+6H++2eBi3++3H2O

For oxidation half cell :
Mn is balanced. So add 4 H2O
in reactant side. Now to balance hydrogen 8 H+ have to add at product side.
Mn2++4H2OMnO4+8H+
Now balance the charge by adding 5 e at product side:
Mn2++4H2OMnO4+8H++5e

BiO3+6H++2eBi3++3H2O (i)

Mn2++4H2OMnO4+8H++5e(ii)
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(i)×5+(ii)×2, we get 14 H++5 BiO3+2Mn2+5Bi3++2MnO4+7 H2O
Hence, (b) is the correct balanced reaction.

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