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Chemistry · General chemistry II · Worked example

Find the mass plated by electrolysis

A current of 2.00 A flows for 1.00 h through a solution of Cu²⁺. What mass of copper is deposited?

Find the charge

1.00 h = 3600 s, and an ampere is one coulomb per second.

q=(2.00 A)⁢(3600 s)=7200 C

Convert to moles of electrons

Divide by the Faraday constant.

ne−=7200 C96485 C/mol=0.07462 mol
ne−=7200 C96485 C/mol=0.07462 mol

Use the half-reaction

Cu²⁺ + 2e⁻ → Cu: two moles of electrons deposit one mole of copper.

nCu=0.07462 mol2=0.03731 mol

Convert to mass

Copper’s molar mass is 63.55 g/mol.

m=(0.03731 mol)⁢(63.55 g/mol)=2.371 g⁡
m=(0.03731 mol)⁢(63.55 g/mol)=2.371 g⁡

Result

2.37 g of copper.

Your turn

How long must a current of 1.50 A flow to plate 1.00 g of silver (Ag⁺ + e⁻ → Ag)?

Show the answer and explanation

About 596 s, or 9.94 min.

1.00 g ÷ 107.87 g/mol = 9.270 × 10⁻³ mol of silver, which needs as many moles of electrons: 894 C. Then t = q/I = 894 C ÷ 1.50 A = 596 s.

1.00⁢(96485)107.87⁢(1.50)≈596.3

Keep exploring

In Electrochemistry & charge, change the product to silver, with one electron per atom. The same charge plates 8.05 g of silver: twice the atoms, each heavier.

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