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Question

Given :

Oxidation :

H2O2O2+2H+2e

E=0.69V;

2FF2+2e

E=2.87V;

Reduction :

H2O2+2H+2e2H2O

E=1.77V;

2II2+2e

E=0.54V;

Which of the following statements is/are correct ?


A
H2O2 behaves as an oxidant for I.
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B
H2O2 behaves as a reductant for I2.
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C
H2O2 behaves as an oxidant for F.
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D
H2O2 behaves as a reductant for F2.
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Solution

The correct options are
A H2O2 behaves as an oxidant for I.
D H2O2 behaves as a reductant for F2.

Create a cell with required equation (cell reaction) and find its Ecell.

(A):H2O2+II2+H2O Ecell=(1.77)(0.54)>0

(B):H2O2+I2I+O2 Ecell=(0.54)(0.69)<0

(Not possible to occur spontaneously) And so on.

(C)H2O2+FF2+H2O Ecell=(1.77)(2.87)<0

(D):H2O2+F2F+O2 Ecell=(2.87)(0.69)>0


The reaction for which Ecell>0 will have ΔG<0. So, options A and D are correct.


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