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Chemistry · General chemistry II · Concept

Gibbs free energy, entropy and spontaneity

A process is spontaneous when it can proceed without continuous outside help. At constant temperature and pressure, the Gibbs free energy change ΔG = ΔH − TΔS decides: a negative ΔG means spontaneous as written. ΔG° also fixes the equilibrium constant through ΔG° = −RT ln K, and for a nonstandard mixture ΔG = ΔG° + RT ln Q.

Spontaneous does not mean fast

A spontaneous process can keep going on its own once started, but thermodynamics says nothing about its rate. Diamond turning into graphite is spontaneous and immeasurably slow; hydrogen and oxygen need a spark before they react.

Entropy

Entropy measures how many ways a system’s energy can be spread out. It rises from solid to liquid to gas, when a solid dissolves, and when a reaction makes more moles of gas. The second law says the entropy of the universe increases in every spontaneous process. A reaction’s ΔS° comes from standard molar entropies the way ΔH° comes from enthalpies of formation, except that elements have nonzero entropies.

ΔS∘=∑nS∘(products)−∑nS∘(reactants)
ΔS∘=∑nS∘(products)−∑nS∘(reactants)

Gibbs free energy

At constant temperature and pressure, ΔG, read “delta G”, combines the energy and entropy changes of the system. ΔG < 0: spontaneous as written; ΔG > 0: the reverse is spontaneous; ΔG = 0: at equilibrium.

Δ⁢G=Δ⁢H−T⁢Δ⁢S

The four sign cases

Because the entropy term −TΔS grows with temperature, the signs of ΔH and ΔS decide how temperature matters.

How the signs of ΔH and ΔS set spontaneity
ΔHΔSSpontaneous
−+At every temperature
+−At no temperature
−−Below T = ΔH/ΔS
++Above T = ΔH/ΔS

Free energy and equilibrium

ΔG° refers to standard states. It sets the equilibrium constant: a negative ΔG° gives K > 1 and a positive one K < 1. For a mixture with reaction quotient Q, ΔG = ΔG° + RT ln Q, which is zero exactly when Q = K.

ΔG∘=−R⁢TlnK

Common mistakes

  • Mixing kJ and J: ΔH is usually in kJ and ΔS in J/K, so convert one before combining them.
  • Using a Celsius temperature in ΔG = ΔH − TΔS.
  • Reading a negative ΔG as a fast reaction: ΔG says whether, not how fast.
  • Using ΔG° for a mixture that is not in its standard states: use ΔG = ΔG° + RT ln Q.
  • Leaving out elements when summing entropies: unlike enthalpies of formation, their standard entropies are not zero.

Key terms

Gibbs energy
G = H − TS. At constant temperature and pressure, a reaction with ΔG < 0 is spontaneous in the forward direction, and ΔG > 0 means the reverse is favored.
Entropy
S, a measure of how spread out a system’s energy and particles are, often described as disorder. It usually increases from solid to liquid to gas.
Thermodynamic spontaneity
A spontaneous process happens on its own once started, without continued outside energy. Spontaneous doesn’t mean fast: diamond turning into graphite is spontaneous but extremely slow.
Second law of thermodynamics
In any spontaneous process, the total entropy of the universe increases: ΔS(universe) = ΔS(system) + ΔS(surroundings) > 0. The system’s own entropy can fall if the surroundings gain more.
Standard state
The reference conditions behind tabulated thermodynamic values: a pure gas at 1 atm (1 bar in newer tables), a solute at 1 M, and a pure liquid or solid in its most stable form. Temperature isn’t fixed by it, though tables usually use 25 °C.
Standard free energy of formation
The Gibbs energy change for making one mole of a compound from its elements, with everything in standard states. Elements in their standard states have ΔG°f = 0.

Work through an example

Use the data in the table to find ΔH°, ΔS° and ΔG° at 298.15 K for 2H₂(g) + O₂(g) → 2H₂O(l).

Find ΔG° from enthalpies and entropies →

Find the temperature where ΔG changes sign →

Relate ΔG° and the equilibrium constant →

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