Electrolysis of dilute aqueous NaCl solution was carried ut be passing – InterviewSolution

1.	Electrolysis of dilute aqueous NaCl solution was carried ut be passing 10 milli ampere current. The time required to liberate 0.01 mol of H_(2) gas at the cathode is (1Faraday=96500 C mol^(-1))
Answer» `9.65xx10^(4)sec` `19.3xx10^(4)sec` `28.95xx10^(4)sec` `38.6xx10^(4)sec` Solution :`NaCl+aq to Na^(+)+CL^(-)` `H_(2)OhArrH^(+)+OH^(-)` `H^(+)+e^(-)to(1)/(2)H_(2)` Thus, 0.5 mole of `H_(2)` is liberated by 1F=96500C `therefore0.01V` mole of `H_(2)` will be liberated by CHARGE `=(96500)/(0.5)xx0.01=1930C` `Q=Ixxt` or `t=(Q)/(I)=(1930C)/(10xx10^(-3)A)`

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