Faraday's Law of Electrolysis (m = QM/nF)
Also known as electroplating mass · electrolysis yield
Worked example: Copper plating, 1 Ah at M = 63.55 g/mol, n = 2 → 1.1856 g — press Try an example to run it live, then adjust anything.
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Grade 12Grade 12 Chemistry
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Faraday's Law of Electrolysis (m = QM/nF) explained
Electroplating is stoichiometry done with a wire. Charge Q divided by the Faraday constant F = 96 485 C/mol gives the moles of electrons pushed through the cell; divide by n, the electrons each ion needs, and you have moles of metal; multiply by the molar mass M and you have grams on the cathode. Charge is usually the thing you control indirectly, through Q = It, so a steady current for a measured time is all the input a plating shop needs.
Michael Faraday established this in 1833–34 with nothing but jars, wires and a balance, and the vocabulary you use to describe it is his. He was uneasy with the existing terms, which assumed electricity was a fluid being carried, so he wrote to William Whewell at Cambridge asking for better ones. Whewell supplied Greek: ion, "that which goes"; anode, the way up; cathode, the way down; electrode, anion, cation, electrolyte. Faraday adopted the lot. What his measurements really showed — that a fixed quantity of electricity always liberates a fixed chemical equivalent — was the first hard evidence that charge itself comes in fixed lumps, sixty years before J. J. Thomson found the electron.
Worked case: copper plating, Cu²⁺ + 2e⁻ → Cu, with M = 63.55 g/mol and n = 2. Run 2.00 A for 30.0 minutes and Q = 2.00 × 1800 = 3600 C (exactly 1 A·h). Then m = 3600 × 63.55/(2 × 96 485) = 1.186 g of copper. Note that the same 3600 C would deposit 4.02 g of silver, because Ag⁺ needs only one electron and carries a heavier atom — the whole reason Faraday's "electrochemical equivalents" differ from element to element.
Faraday's Law of Electrolysis (m = QM/nF) formula
- = Mass deposited or dissolved (g)
- = Charge passed (C)
- = Molar mass of the deposited element (g/mol)
- = Electrons transferred per ion
Missing one of these? Work it out first, then come back
- Mass deposited or dissolved — Density, Sensible Heat (Q = mcΔT)
- Charge passed — Electric Charge (Q = It), Coulomb's Law
- Molar mass of the deposited element — Percent Composition of an Element, Empirical Formula Mole Ratio from Percent Composition
- Electrons transferred per ion — Radioactive Activity (A = λN), Particles from Moles (Avogadro's Number)