Nernst Equation Calculator
Find cell potential or equilibrium membrane potential from concentrations, step by step
The Nernst Equation
The Nernst equation corrects a standard electrode potential for concentrations that are not at standard state:
- â the actual cell potential, in volts.
- â the standard cell potential (all solutes at 1 M, all gases at 1 bar).
- , â absolute temperature in kelvin.
- â moles of electrons transferred in the balanced cell reaction.
- , the Faraday constant.
- â the reaction quotient, products over reactants, each raised to its coefficient. Pure solids and pure liquids are omitted.
At 25 °C the whole prefactor collapses to a single number once the natural log is converted to base 10:
What it assumes. Concentrations stand in for activities, which holds in dilute solution; the temperature is uniform and known; and is the value for the same balanced reaction whose you used. That 0.0592 belongs to 25 °C only â at 37 °C the base-10 prefactor is 0.0615 V.
Using It for Cells and Membranes
Electrochemical cells
- Balance the half-reactions and read off , the electrons cancelled.
- Write for the overall reaction, omitting solids and pure liquids.
- Substitute into at 25 °C.
- Interpret: means the reaction as written is spontaneous. When is small â products scarce â the log is negative and rises above .
At equilibrium the cell is dead: and , which gives
Concentration cells
With the same electrode material on both sides, and the potential comes entirely from the concentration difference.
Membrane potentials
For a single ion of charge distributed across a membrane, the same algebra gives the equilibrium (Nernst) potential:
at 37 °C. This is the voltage at which that ion's electrical and diffusional driving forces cancel. It describes one ion; a real resting potential mixes several.
Common Mistakes to Avoid
- Getting wrong. is the number of electrons transferred in the balanced overall reaction â 2 for , not 1. It divides the whole correction term.
- Using 0.0592 away from 25 °C. That constant is at 298.15 K. At body temperature use 0.0615 V (61.5 mV).
- Mixing and . The form takes ; the 0.0592 form takes . They differ by 2.303.
- Including solids or the solvent in . Solid zinc and liquid water have unit activity and never appear.
- Inverting the membrane ratio. uses outside over inside; flipping it flips the sign, turning mV into mV.
- Forgetting the ion's charge sign. For , , which reverses the result relative to a cation with the same gradient.
Examples
Frequently Asked Questions
E = E° - (RT/nF) ln Q. It adjusts a standard electrode potential for the actual concentrations in the cell. At 25 °C it simplifies to E = E° - (0.0592/n) log10 Q, with E in volts.
n is the number of moles of electrons transferred in the balanced overall cell reaction â the number that cancels when you add the two half-reactions. For Zn + Cu2+ it is 2. Getting n wrong scales the entire concentration correction.
Q is the reaction quotient of the balanced cell reaction: concentrations (or partial pressures) of products over reactants, each raised to its stoichiometric coefficient. Pure solids and pure liquids are left out because their activity is 1.
At equilibrium the cell can do no more work, so E = 0 and Q equals the equilibrium constant K. Setting E = 0 gives log10 K = nE°/0.0592 at 25 °C, which is how standard potentials are turned into equilibrium constants.
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