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Showing 7 of 7 formulas Page 1 of 1

Nernst Equation

Chemistry β†’ Electrochemistry β†’ Cells β†’ Potential
$$E = E^\circ - \frac{0.0591}{n}\log Q$$
Cell potential
πŸ“– Chemistry πŸ“š Cells

Faraday's First Law of Electrolysis

Chemistry β†’ Electrochemistry β†’ Electrolysis β†’ Quantitative Electrolysis
$$m = ZIt$$
States that the mass of a substance deposited at an electrode is proportional to the quantity of electricity passed.
πŸ“– Chemistry πŸ“š Electrolysis

Standard Cell Potential

Chemistry β†’ Electrochemistry β†’ Redox β†’ Voltage
$$E^\circ_{\text{cell}} = E^\circ_{\text{cathode}} - E^\circ_{\text{anode}}$$
Calculates the maximum voltage of an electrochemical cell under standard conditions.
πŸ“– Chemistry πŸ“š Redox

Faraday's Second Law of Electrolysis

Chemistry β†’ Electrochemistry β†’ Electrolysis β†’ Chemical Equivalents
$$\frac{m_1}{m_2} = \frac{E_1}{E_2}$$
Masses of different substances deposited by the same amount of electricity are proportional to their chemical equivalent weights.
πŸ“– Chemistry πŸ“š Electrolysis

Molar Conductivity

Chemistry β†’ Electrochemistry β†’ Electrochemistry β†’ Conductance
$$\Lambda_m = \frac{\kappa}{C}$$
The conducting power of all the ions produced by dissolving one mole of electrolyte in solution.
πŸ“– Chemistry πŸ“š Electrochemistry

Standard Cell Potential (Non-Standard)

Chemistry β†’ Electrochemistry β†’ Nernst Equation β†’ Voltage
$$E_{\text{cell}} = E^\circ - \frac{0.0591}{n} \log Q$$
Simplified Nernst equation for calculating cell voltage at $298 K$ using base-10 log.
πŸ“– Chemistry πŸ“š Nernst Equation

First Law of Electrolysis (Faraday)

Chemistry β†’ Electrochemistry β†’ Electrolysis β†’ Quantitative Electrolysis
$$m = ZIt$$
The mass of a substance deposited at an electrode is directly proportional to the quantity of electricity passed through the electrolyte.
πŸ“– Chemistry πŸ“š Electrolysis
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