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Q.A solution of CuSO4 is electrolysed for 10 minutes with a current of 1.5 amperes. What is the mass of copper deposited at cathode? (Atomic mass of Cu = 63 U)

Jharkhand JacJAC Intermediate Board 2024Subjective· 3mImportance★★★★★
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Use Faraday's law: find the total charge passed, convert to moles of electrons, then to moles (and mass) of copper using the 2-electron reduction Cu2+ + 2e- -> Cu.

Given: I = 1.5 A, t = 10 min = 600 s, atomic mass of Cu = 63 g/mol, F = 96500 C/mol.

Step 1 - total charge passed:

Q = I x t = 1.5 A x 600 s = 900 C

Step 2 - moles of electrons passed:

moles of e- = Q / F = 900 / 96500 = 9.326 x 10^-3 mol

Step 3 - electrode reaction and moles of Cu:

Cu2+ + 2e- -> Cu (2 mol electrons deposit 1 mol Cu) …

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