Questions
1-How long it takes to deposit 0.635 g of Cu at the cathode during the electrolysis of CuSO4(aq) solution, if the current used is of 0.200A? 2- An industrial cell electrolyzes an aqueous solution of NaCl using a current of 100 kiloamps for 90,000 seconds. How many kilograms of chlorine does it produce?
Answers:
1- Cu2+(aq) + 2e → Cu(s)
2 moles of electrons are required to produce 1 mole of Cu.
In other words, 2 x 96320 C produce 63.5 g of Cu.
Then the production 0.635 g requires: (2 x 96320 C/63.5g) x 0.635 = 1,926.4C
t = 1,926.4C/0.200A = 9632 s = 160.5 min = 2.68 h
N.B: If you apply directly the formula: t = (m x 2F)/(i x M) = (0.635 x 2 x 96320)/ (0.200 x 63.5) = 9632 s.
2- 2Cl-(aq) → Cl2(g) + 2e
2 moles of e are required to produce 1 mole of Cl2; in other words, 2 x 96320 or 192,640 C are required to produce 1 mole or 70.90g of Cl2.
Quantity of electricity used in the process: It = 100,000 A x 90,000 s = 9 x 109 C
The amount of Cl2 produced: (70.90 g/192,640 C) x 9 x 109 C = 3,312,396 g = 3,312.396 Kg = 3.312 Metric tonne.