Chemistry · Ch 2 — Electrochemistry
Summary
Summary
- Electrochemical cells convert chemical energy to electrical (galvanic) or vice versa (electrolytic).
- Galvanic cell: spontaneous redox reaction (); anode (oxidation, negative), cathode (reduction, positive).
- Cell representation: — single vertical line for phase boundary, double for salt bridge.
- Cell potential (): (in volts).
- Standard electrode potential (): measured under 1 M, 1 bar, 298 K relative to SHE ( V).
- Nernst equation: at 298 K; relates potential to concentration.
- Equilibrium constant (): at 298 K.
- Gibbs free energy: ; spontaneous if .
- Conductance: (specific conductivity); molar conductivity .
- Kohlrausch’s law: ; used to find for weak electrolytes.
- Faraday’s laws: mass deposited ; . …