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Lattice Energy (Enthalpy)
Concept and Applications
Definition
The lattice formation enthalpy is the enthalpy change when 1
mole of solid crystal is formed from its scattered gaseous
ions. Lattice formation enthalpies are always negative.
Na+ (g) + Cl- (g) = NaCl (s)
Lattice enthalpy is a measure of the strength of the forces
between the ions in an ionic solid. The greater the lattice
enthalpy, the stronger the forces.
Factors affecting lattice
enthalpy
The two main factors
affecting lattice enthalpy are
(a) the charges on the ions
and
(b) the ionic radii (which
affects the distance
between the ions).
Factors affecting lattice
enthalpy
The two main factors affecting lattice enthalpy are (a) the charges on the ions and
(b) the ionic radii (which affects the distance between the ions).
Source

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Lattice Energy and Enthalpy: Concept and applications.

  • 2. Definition The lattice formation enthalpy is the enthalpy change when 1 mole of solid crystal is formed from its scattered gaseous ions. Lattice formation enthalpies are always negative. Na+ (g) + Cl- (g) = NaCl (s) Lattice enthalpy is a measure of the strength of the forces between the ions in an ionic solid. The greater the lattice enthalpy, the stronger the forces.
  • 3. Factors affecting lattice enthalpy The two main factors affecting lattice enthalpy are (a) the charges on the ions and (b) the ionic radii (which affects the distance between the ions).
  • 4. Factors affecting lattice enthalpy The two main factors affecting lattice enthalpy are (a) the charges on the ions and (b) the ionic radii (which affects the distance between the ions). Source