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Gibbs free energy calculator

Reaction spontaneity from the change in enthalpy, entropy and temperature.

Published 8 August 2026 · Updated 25 September 2026

What this calculator does

Gibbs free energy is enthalpy minus temperature times entropy, and its sign decides whether a reaction proceeds. A reaction releasing 92.4 kJ/mol but losing 198.4 J/(mol·K) of entropy gives −33.247 kJ/mol at room temperature, so it runs.

That same reaction stops running if it gets hot enough. At 600 K the entropy term has grown to −119 kJ/mol and outweighs the enthalpy, giving a positive ΔG. The crossover sits at about 466 K, which is the temperature where the two terms exactly balance. This is why many industrial syntheses have an optimum temperature rather than simply going faster when heated.

The formula

FormulaΔG = ΔH − TΔS

ΔG is ΔH minus T times ΔS. The units differ by a factor of a thousand, since enthalpy is conventionally quoted in kJ/mol and entropy in J/(mol·K), and the calculator handles that conversion. A negative ΔG means the reaction is thermodynamically favourable; it says nothing about how fast it will go, which is a kinetic question.

TermMeaning
ΔGGibbs free energy change. Negative means spontaneous.
ΔHEnthalpy change. Negative means heat is released.
ΔSEntropy change. Positive means disorder increases.
SpontaneousThermodynamically favourable. It does not mean fast, and many spontaneous reactions never visibly proceed.

The inputs explained

FieldWhat to enter
Enthalpy change ΔH (kJ/mol)Enthalpy change in kJ/mol. Negative for an exothermic reaction.
Entropy change ΔS (J/(mol·K))Entropy change in J/(mol·K). Note the joules, not kilojoules.
Temperature (K)Temperature in kelvin.

When to use it

Predicting whether a reaction will go

The sign of ΔG is the thermodynamic verdict, independent of any reaction pathway.

Finding a crossover temperature

Where enthalpy and entropy oppose each other, there is a temperature at which the verdict flips.

Understanding industrial conditions

The choice of operating temperature often balances a thermodynamic penalty against a kinetic benefit.

Worked examples

Every figure in the tables below is produced by this page’s own calculator at build time, so the numbers and the tool always agree. Select any row to load that scenario.

How does temperature change the verdict?

The same reaction at a range of temperatures.

ΔH = −92.4 kJ/mol, ΔS = −198.4 J/(mol·K)
TemperatureGibbs free energy ΔGT·ΔS termSpontaneity
200 K-52.720 kJ/mol-39.680 kJ/molspontaneous (favourable) at this temperature
298.15 K-33.247 kJ/mol-59.153 kJ/molspontaneous (favourable) at this temperature
400 K-13.040 kJ/mol-79.360 kJ/molspontaneous (favourable) at this temperature
600 K26.640 kJ/mol-119.040 kJ/molnon-spontaneous at this temperature
The enthalpy term is fixed at −92.40 kJ/mol while the entropy term grows with temperature, from −39.68 to −119.04 kJ/mol. The verdict flips between 400 K and 600 K, at 92,400 divided by 198.4, which is about 466 K. Above that the entropy penalty wins.

Questions

Does spontaneous mean fast?

No, and this is the most common misreading. Spontaneous means thermodynamically favourable. Diamond converting to graphite is spontaneous at room temperature and takes geological time, because the activation barrier is enormous. Rate is a separate question answered by kinetics.

What are the four sign combinations?

Negative ΔH with positive ΔS is spontaneous at all temperatures. Positive ΔH with negative ΔS is never spontaneous. The mixed cases depend on temperature: negative-negative favours low temperatures and positive-positive favours high ones.

Why do enthalpy and entropy use different units?

Convention. Enthalpy changes are large and quoted in kJ/mol; entropy changes are smaller and quoted in J/(mol·K). Forgetting the factor of a thousand is the classic error, and it produces an answer wrong by 1,000 in the entropy term.

How do I find the crossover temperature?

Set ΔG to zero and solve, giving T equal to ΔH over ΔS. For the reaction above that is 92,400 J/mol divided by 198.4 J/(mol·K), about 466 K. Above that temperature the sign of ΔG reverses.

For entropy values, see the entropy calculator. For equilibrium constants, see the Kp and Kc conversion calculator.