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Question

An acidic solution of dichromate is electrolyzed for 8minutes using 2A current. As per the following equation,

Cr2O72-+14H++6e2Cr3+++7H2O

The amount of Cr3+ obtained was 0.104g. The efficiency of the process (in %) is _______(Take: F = 96000C, At. mass of chromium = 52).


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Solution

Step 1: It is given that time taken in electrolysis,

t=8minutes=8×60s=480s

Current, I=2A, mass of Cr3+ is m=0.104g.

Step 2: Determination of flow of charge: We know that q=I×t where, q is flow of charge, I is current and t is time taken.

Step 3: Putting the given values in the equation above: q=2×480=960C

Converting flow of charge into faraday: q=96096500F=9.948×10-3F

The flow of charge in terms of moles of ​Cr3+ is: q=13×9.948×10-3=3.316×10-3F as, Cr is converted from +6 to +3.

Theoretical mass of Cr3+: m=3.316×10-3×52=172.43×10-3g where 52 is the atomic mass of Cr3+

The efficiency of the process: efficiency%=WactualWtheoritical×100=0.104172.43×10-3×100=60.31%

Therefore, the efficiency of the process is 60.31%.


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