Electrochemistry
Punjab Board · Class 12 · Chemistry
Complete topic list for Electrochemistry in Punjab Board Class 12 Chemistry. Key concepts, sub-topics, and what to focus on for board exams.
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Topics in Electrochemistry
Electrochemical Cells – Galvanic and Electrolytic
- An electrochemical cell has two metallic electrodes dipping in an electrolytic solution.
- Galvanic (Voltaic) Cell: Converts chemical energy of a SPONTANEOUS redox reaction into electrical energy. Example: Daniell Cell.
- Electrolytic Cell: Uses ELECTRICAL ENERGY to carry out NON-SPONTANEOUS chemical reactions.
Nernst Equation
- The Nernst equation gives the electrode potential or cell potential at any given concentration (not just standard conditions).
- For electrode reaction: M^n+(aq) + ne⁻ → M(s), the electrode potential is given by the Nernst equation.
- General Nernst equation for a cell: E_cell = E°_cell – (RT/nF) ln Q
Conductance of Electrolytic Solutions
- Resistance (R) of a conductor: R = ρl/A (in ohms, Ω); where ρ = resistivity, l = length, A = cross-section area.
- Resistivity (ρ): Resistance of a material of 1 m length and 1 m² cross-section. SI unit: Ω m.
- Conductance (G) = 1/R = κA/l. SI unit: Siemens (S) or Ω⁻¹.
Variation of Molar Conductivity and Kohlrausch's Law
- STRONG ELECTROLYTES (e.g., NaCl, KCl, HCl): Λm increases SLOWLY with dilution. Debye-Hückel-Onsager equation: Λm = Λ°m – A√c (Debye-Hückel-Onsager or Kohlrausch equation).
- Plot of Λm vs √c is a straight line for strong electrolytes. Intercept = Λ°m, Slope = –A.
- WEAK ELECTROLYTES (e.g., CH₃COOH, NH₄OH): Λm increases STEEPLY with dilution, especially at very low concentrations.
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