Electrocatalysis

Overpotential calculator

Compare a measured electrode potential with a defined equilibrium potential at the same conditions. Keep reference conversion, thermodynamics and residual iR correction separate.

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Inputs & conditions

Scientific tool
Not a two-electrode cell voltage.
Reference and solution conditions
Use the pH associated with the equilibrium model.
The 1.229 V oxygen/water preset is restricted to 25 °C.
Calibrated at the entered temperature.
Reaction activities
H₂ for HER; O₂ for OER/ORR. For an ideal gas, use partial pressure in bar.
Unitless; 1 for pure liquid water.
Optional residual iR correction
Positive = anodic. Use current, not current density.
Enter only the uncompensated remainder. Use 0 for already fully corrected data.

Signed convention: η = Einterface − Eeq. A negative value is cathodic. Magnitude and intended-direction driving potential are reported separately.

Results

SI-based

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Displayed digits are a numerical representation, not an experimental uncertainty estimate. Input conditions and method version are included in exports.

Equilibrium first, overpotential second

All equilibrium equations are written as reductions, even when evaluating oxygen evolution. A measured single-electrode potential is converted to the same reference as Eeq. Residual ohmic drop is then distinguished from the thermodynamic reference.

Einterface = Emeasured − I Ru,remaining
η = Einterface − Eeq
Eeq = E° − (RT/nF) ln Q

Current is positive for oxidation and negative for reduction. Thus negative cathodic current makes the corrected potential less negative. Enter the remaining uncompensated resistance only: applying the full resistance to data already corrected by the instrument double-counts that correction.

Water-reaction presets

For HER, the reduction is 2H⁺ + 2e⁻ ⇌ H₂ and log₁₀Q = log₁₀(fH₂/1 bar) + 2pH. For oxygen/water, O₂ + 4H⁺ + 4e⁻ ⇌ 2H₂O and log₁₀Q = 2log₁₀aH₂O − log₁₀(fO₂/1 bar) + 4pH. The oxygen/water preset uses E° = 1.229 V at 25 °C only.

Gas activities are expressed as fugacity divided by 1 bar. For an ideal-gas approximation, enter partial pressure in bar. The RHE scale remains referenced to unit H₂ fugacity; changing a reaction-gas input is not changing that reference electrode.

Worked example

OER, 1.550 V vs RHE, 25 °C, unit gas and water activities:
η = 1.550 − 1.229 = +0.321 V.
With I = +10 mA and remaining Ru = 5 Ω: η = +0.271 V.

Custom reactions, including CO₂ reduction

The general aqueous Nernst mode uses a reduction-form equation with n electrons and a net m protons consumed. Enter log₁₀Q excluding H⁺; the calculator adds m × pH. Supply E° at the actual temperature. Do not add this pH term again to a conditional potential that already includes pH.

For solvent-specific equilibria or complex CO₂ speciation, use Supplied Eeq in exactly the same reference and conditions as the measurement. There is no universal “CO₂-reduction overpotential” independent of product, activities, proton donor and solvent. This tool does not infer a thermodynamic equilibrium from an irreversible peak or onset.

Common questions

Why show both signed η and |η|?

The signed value identifies the direction. The magnitude alone can hide that a potential is on the wrong side of equilibrium for the intended reaction. A separate driving-potential check warns when the selected direction is not thermodynamically driven by the entered potential.

Can I enter a two-electrode cell voltage?

No. This calculator evaluates a single-electrode overpotential. A full cell includes both electrode contributions and ohmic losses. Nor does the result automatically separate kinetic from concentration overpotential: that depends on whether local or bulk activities define Eeq.

Sources and conventions

  1. IUPAC Gold Book · Overpotential
  2. IUPAC Gold Book · Nernst equation
  3. IUPAC Gold Book · Equilibrium electrode potential
  4. Tian & Anderson, J. Phys. Chem. C (2011) · O₂/H₂O standard potential
  5. Gamry Instruments · Understanding iR compensation
  6. ACS Omega (2021) · Reference-potential conventions, Table 2

Method version 1.0.0 · 19 September 2026. Display precision is not measurement accuracy. Read the full scope and validation limits.