12.3 - Lattice Energy
- 1Types of enthalpy change
- 2Lattice energy and factors affecting it
Types of enthalpy change
There are many types of enthalpy change, each referring to a specific chemical or physical process:
- Enthalpy change of formation (ΔH⦵f) - The enthalpy change when 1 mole of a compound is formed from its elements in their standard states under standard conditions. For example: 2C(s) + 3H2(g) + 1⁄2O2(g) ➔ C2H5OH(l)
ΔH⦵f values are usually exothermic as energy is released when bonds form between the elements to make the compound.
- Enthalpy change of atomisation (ΔH⦵at) - The enthalpy change when 1 mole of gaseous atoms is formed from the element in its standard state under standard conditions. For example: 1⁄2Cl2(g) ➔ Cl(g)
ΔH⦵at values are always endothermic as energy must be supplied to break the bonds holding the atoms in the element together.
- First ionisation energy (ΔH⦵IE1) - The enthalpy change when 1 mole of gaseous 1+ ions is formed from 1 mole of gaseous atoms. For example: Mg(g) ➔ Mg+(g) + e-
ΔH⦵IE1 values are always endothermic as energy is needed to overcome the electrostatic attraction between the nucleus and the electron being removed.
- Second ionisation energy (ΔH⦵IE2) - The enthalpy change when 1 mole of gaseous 2+ ions is formed from 1 mole of gaseous 1+ ions. For example: Mg+(g) ➔ Mg2+(g) + e-
ΔH⦵IE2 values are always endothermic as even more energy is required to remove an electron from a positively charged ion.
- First electron affinity (ΔH⦵ea1) - The enthalpy change when 1 mole of gaseous 1- ions is formed from 1 mole of gaseous atoms. For example: O(g) + e- ➔ O-(g)
ΔH⦵ea1 values are usually exothermic as the attraction between the nucleus and the incoming electron releases energy.
- Second electron affinity (ΔH⦵ea2) - The enthalpy change when 1 mole of gaseous 2- ions is formed from 1 mole of gaseous 1- ions. For example: O-(g) + e- ➔ O2-(g)
ΔH⦵ea2 values are always endothermic as energy must be supplied to overcome the repulsion between the negative ion and the second incoming electron.
Factors affecting lattice energy
The lattice energy of an ionic compound depends on two key factors.
1. Ionic charge
- Ions with higher charges experience stronger electrostatic attractions than ions with lower charges.
- This leads to more energy being released when the lattice forms, resulting in a more negative lattice energy.
- For example, MgCl2 has a much more negative lattice energy (2,526 kJ mol-1) than NaCl (787 kJ mol-1) because the Mg2+ ion has a higher charge than the Na+ ion, resulting in stronger electrostatic attractions in the lattice.
2. Ionic radius
- Smaller ions have a higher charge density and can pack more closely together in the lattice.
- This increases the strength of the electrostatic attractions between ions.
- Consequently, compounds with smaller ions tend to have more negative lattice energies.
- For example, LiCl has a more negative lattice energy (853 kJ mol-1) than NaCl (787 kJ mol-1) because the Li+ ion is smaller than the Na+ ion, allowing closer packing in the lattice.
So in general, compounds with small, highly charged ions have the most negative lattice energies.