ThermodynamicsLattice, hydration & solution

Year 13 · AQA & OCR A

Lattice, hydration & solution enthalpy

Start with the ionic solid, separate it into gaseous ions, then hydrate those ions. The practice keeps the direction, sign and ion coefficients visible so the Hess cycle does the chemistry rather than becoming a sign-guessing exercise.

Calculate, rearrange or explain the trend

The harder mix removes some of the scaffolding and adds AQA perfect-ionic-model questions where they belong.

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Skill: ionic energeticsIonic energetics · SITE 2.26.1

See which direction each enthalpy term must run

Choose a salt and follow one mole of solid through gaseous ions to aqueous ions. The direct route is ΔHsol.

Use ions, not atoms

Lattice and hydration trends depend on ionic charge and ionic radius. For example, F is smaller than I; comparing fluorine and iodine atoms answers a different question.

Greater charge strengthens attraction

Larger ionic charges strengthen electrostatic attraction in a lattice and ion–dipole attraction during hydration. That usually makes the corresponding enthalpy more exothermic.

Smaller ions strengthen attraction

For ions with the same charge, a smaller ionic radius lets opposite charges approach more closely. Hydration also becomes more exothermic because water can interact more strongly with the concentrated ionic charge.

Count every hydrated ion

One mole of MgCl2 gives one Mg2+ and two Cl ions. The chloride hydration enthalpy therefore appears twice in the solution cycle.

Born–Haber builds the lattice; the solution cycle takes it apart

If the lattice term itself is the weak point, practise Born–Haber next. The full A-level bonding lab still keeps a shorter conceptual ionic-energetics route alongside complex ions and delocalisation.