Paritian

Chemistry

Nernst Equation Calculator

Cell potential away from standard conditions, the slope per decade, the Gibbs energy and the equilibrium constant.

Results

Cell potential 1.159159 V
Voltage 0.029580 V/decade
Gibbs free energy -223.6837 kJ/mol
Equilibrium constant 1.54063e+37

What this tool does

Standard potentials assume everything at one molar, which almost nothing ever is. The Nernst equation corrects for the actual concentrations, and it explains why a battery's voltage sags as it discharges: the products build up, the quotient rises, and the potential falls with it.

Formula

E = E° − (RT ÷ nF) × ln Q

Variables

SymbolMeaningUnit
e0Standard potentialV
nzElectrons exchanged
qqReaction quotient
tTemperature°C
ECell potentialV
SLVoltageV/decade
DGGibbs free energykJ/mol
KQEquilibrium constant

Worked example

  • Standard potential1.1 V
  • Electrons exchanged2
  • Reaction quotient0.01
  • Temperature25 °C
  • Cell potential1.159159 V
  • Voltage0.029580 V/decade
  • Gibbs free energy-223.6837 kJ/mol
  • Equilibrium constant1.54063e+37

Limitations

  • For work that must comply with a standard or be signed off, check the result against the applicable code and have it reviewed by a qualified engineer.
  • The formula assumes ideal conditions: no friction losses, no air resistance and no efficiency losses unless you enter them.

Frequently asked questions

What is the 59 mV per decade figure?

It is the second result: how much the potential shifts for each tenfold change in the quotient, for a single-electron process at 25 °C. It is why a pH electrode reads about 59 millivolts per pH unit, and why calibrating one at a different temperature matters — the slope changes with absolute temperature.