IB Chemistry R1.4 R1.4.1
R1.4.1 HL

Entropy (S)

Entropy (S) is a measure of the disorder or number of possible arrangements (microstates) of a system. The greater the disorder, the higher the entropy.

Key Definition

Entropy (S) — a thermodynamic quantity representing the number of ways energy can be distributed among particles. Units: J K⁻¹ mol⁻¹

\( \Delta S = \sum S(\text{products}) - \sum S(\text{reactants}) \)

Predicting Entropy Changes

Entropy Increases With...

Increasing Entropy → Solid Low S Liquid Medium S Gas High S Also: more moles of gas, higher T, dissolved vs solid

Rules for Predicting ΔS

  • ΔS > 0 (positive): solid → liquid → gas, fewer → more moles of gas, dissolving
  • ΔS < 0 (negative): gas → liquid → solid, more → fewer moles of gas
  • Entropy of a perfect crystal at 0 K is zero (Third Law of Thermodynamics)

Think About It

CaCO₃(s) → CaO(s) + CO₂(g). Predict the sign of ΔS.

ΔS > 0 (positive) — a gas is produced from a solid. The number of moles of gas increases from 0 to 1, greatly increasing disorder.

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