The ionic model
🎯What you need to be able to do
- Predict the charge of an ion from the electron configuration of its atom, including the different charges formed by a transition element.
- Describe the ionic bond as the electrostatic attraction between oppositely charged ions.
- Deduce the formula and name of an ionic compound from its component ions, including the polyatomic ions listed in the syllabus, and interconvert names and formulas of binary ionic compounds.
- Explain why ionic compounds exist as three-dimensional lattices represented by empirical formulas.
- Explain the volatility, electrical conductivity and solubility of ionic compounds.
- Use lattice enthalpy as a measure of ionic bond strength, and explain how ionic radius and ionic charge affect it.
📚The chemistry
Forming ions
Metal atoms lose electrons to form positive ions, cations; non-metal atoms gain electrons to form negative ions, anions. In each case the driving pattern is the achievement of a stable noble-gas electron configuration, and the charge follows directly from the electron configuration you learned in S1.3.
Transition elements form ions of more than one charge, and the syllabus requires this. Iron gives \( \mathrm{Fe^{2+}} \) and \( \mathrm{Fe^{3+}} \); copper gives \( \mathrm{Cu^{+}} \) and \( \mathrm{Cu^{2+}} \). The reason is that the 4s and 3d sublevels are close in energy, so removing a third or fourth electron does not cost dramatically more than removing the second — the full explanation is in S3.1. In names and formulas the charge is therefore stated in Roman numerals: iron(II) chloride is \( \mathrm{FeCl_2} \), iron(III) chloride is \( \mathrm{FeCl_3} \).
The ionic bond
An ionic bond is the electrostatic attraction between oppositely charged ions. Two features distinguish it from a covalent bond and both matter later:
- It is non-directional. The attraction acts equally in all directions, so an ion attracts every oppositely charged ion around it, not one partner.
- It only forms between different elements — one must lose electrons and the other gain them — whereas a covalent bond can form between identical atoms.
Formulas and names
An ionic compound is electrically neutral overall, so the formula is whatever ratio makes the charges cancel. Balance the charges and then reduce to the simplest ratio.
Binary ionic compounds are named cation first, then anion with the suffix “-ide”: sodium chloride, magnesium oxide, calcium nitride. Compounds containing a polyatomic ion keep that ion’s name unchanged.
Seven polyatomic ions must be known by name and formula. There is no way round learning these:
When more than one polyatomic ion is needed, bracket it: calcium hydroxide is \( \mathrm{Ca(OH)_2} \), not \( \mathrm{CaOH_2} \), and aluminium sulfate is \( \mathrm{Al_2(SO_4)_3} \). Without the brackets the subscript applies only to the last atom, which is a different compound entirely.
The lattice, and why the formula is empirical
Because the ionic bond is non-directional, ions pack into a giant three-dimensional lattice in which every cation is surrounded by anions and vice versa. In sodium chloride each \( \mathrm{Na^{+}} \) is surrounded by six \( \mathrm{Cl^{-}} \) and each \( \mathrm{Cl^{-}} \) by six \( \mathrm{Na^{+}} \).
So there is no such thing as a molecule of sodium chloride. The formula \( \mathrm{NaCl} \) does not describe a particle; it states the ratio in which the ions are present. Ionic formulas are therefore always empirical formulas, and the correct term for \( \mathrm{NaCl} \) is a formula unit.
Explaining the properties
Every property of an ionic compound comes back to the same two facts: the lattice is held by strong electrostatic forces acting in all directions, and it is built from charged particles.
- Low volatility, high melting and boiling points. Melting requires the electrostatic attractions between ions throughout the lattice to be overcome, and there are a very large number of them. That takes a great deal of energy, so ionic solids have high melting points and evaporate hardly at all — they are non-volatile.
- Electrical conductivity. A substance conducts if it contains charged particles that are free to move. In a solid ionic lattice the ions are held in fixed positions, so it does not conduct. Molten or dissolved in water, the ions become mobile and it does conduct — and in doing so is decomposed, which is electrolysis (R3.2).
- Solubility. Many ionic compounds dissolve in water and few dissolve in non-polar solvents. Water molecules are polar: the \( \delta- \) oxygen is attracted to cations and the \( \delta+ \) hydrogens to anions. These ion–dipole attractions release energy (hydration) which can compensate for the energy needed to break up the lattice. A non-polar solvent cannot form such interactions, so it cannot pay for the lattice, and the solid does not dissolve.
- Brittleness. Not on the syllabus list but worth knowing: strike an ionic crystal and the layers shift, bringing like charges into contact; the resulting repulsion splits the crystal along a clean plane. Contrast metals in S2.3.
Lattice enthalpy
Lattice enthalpy is the measure of the strength of the ionic bonding in a compound. It is the energy change when one mole of a solid ionic compound is separated into its gaseous ions, and it is governed by Coulomb’s law: the electrostatic force is proportional to the product of the charges and inversely proportional to the distance between the centres of the ions.
→ stronger attraction
→ larger lattice enthalpy
→ higher melting point
→ ions closer together
→ stronger attraction
→ larger lattice enthalpy
Charge is much the more powerful of the two. Magnesium oxide (2+ with 2−) melts at about 2850 °C while sodium chloride (1+ with 1−) melts at 801 °C, even though the ions are of comparable size — because the charge product is four times greater. Radius explains the trends within a group: down group 1 the chlorides have progressively smaller lattice enthalpies as the cation grows.
The full thermodynamic treatment of lattice enthalpy, via the Born–Haber cycle, is AHL material in R1.2. Here you only need it as a measure of bond strength and the two factors that control it.
✏️Worked example
(b) Write the formula of iron(III) sulfate and of ammonium phosphate.
(c) Sodium chloride melts at 801 °C; magnesium oxide melts at 2852 °C; potassium chloride melts at 770 °C. Explain both differences.
(d) Explain why solid magnesium chloride does not conduct electricity but molten magnesium chloride does, and state what happens at each electrode when the melt is electrolysed.
(a) Aluminium is in group 13, so it forms \( \mathrm{Al^{3+}} \); oxygen is in group 16, so it forms \( \mathrm{O^{2-}} \). For neutrality the charges must cancel: the lowest common multiple of 3 and 2 is 6, so two \( \mathrm{Al^{3+}} \) (total 6+) balance three \( \mathrm{O^{2-}} \) (total 6−). The formula is \( \mathrm{Al_2O_3} \), aluminium oxide.
(b) Iron(III) is \( \mathrm{Fe^{3+}} \) and sulfate is \( \mathrm{SO_4^{2-}} \); balancing 3 against 2 gives two iron ions and three sulfate ions, so \( \mathrm{Fe_2(SO_4)_3} \). Ammonium is \( \mathrm{NH_4^{+}} \) and phosphate is \( \mathrm{PO_4^{3-}} \), so three ammonium ions are needed: \( \mathrm{(NH_4)_3PO_4} \). Both need brackets, because the subscript applies to the whole polyatomic ion.
(c) Two separate comparisons, each changing one variable.
MgO against NaCl — the charges differ. \( \mathrm{Mg^{2+}} \) and \( \mathrm{O^{2-}} \) carry double the charge of \( \mathrm{Na^{+}} \) and \( \mathrm{Cl^{-}} \), so the electrostatic attraction is far stronger, the lattice enthalpy far larger, and much more energy is needed to separate the ions. (The ions are also smaller, which adds to the effect, but charge is the dominant reason.)
KCl against NaCl — the charges are the same, so the difference must be size. \( \mathrm{K^{+}} \) has an extra occupied main energy level and so is larger than \( \mathrm{Na^{+}} \). The centres of the ions are further apart, the electrostatic attraction is weaker, the lattice enthalpy smaller, and the melting point lower.
(d) Conduction requires mobile charge carriers. In the solid, the \( \mathrm{Mg^{2+}} \) and \( \mathrm{Cl^{-}} \) ions are held in fixed positions in the lattice by strong electrostatic attractions, so although charged particles are present they cannot move, and no current flows. On melting, the lattice breaks down and the ions are free to move towards the electrodes, so the liquid conducts.
At the cathode (negative), magnesium ions are reduced: \( \mathrm{Mg^{2+}} + 2\mathrm{e^{-}} \rightarrow \mathrm{Mg}(l) \). At the anode (positive), chloride ions are oxidised: \( 2\mathrm{Cl^{-}} \rightarrow \mathrm{Cl_2}(g) + 2\mathrm{e^{-}} \).
📝Practise
Work through these on paper, then reveal the answer.
1. Write formulas for: calcium nitrate, sodium hydrogencarbonate, ammonium sulfate, chromium(III) oxide, and lithium phosphate.
2. Predict, using electron configurations, the charge of the ion formed by each of: K, Ba, S, N and Br.
3. Explain why sodium chloride dissolves readily in water but not in hexane.
4. Place the following in order of increasing melting point and justify the order: NaF, MgO, KBr, CaO.
5. Explain why the formula of an ionic compound is described as an empirical formula, and why it is wrong to speak of "a molecule of magnesium chloride".
6. Aluminium oxide has a much higher melting point than sodium oxide. Identify the two factors responsible and state which is more important, then predict which of MgCl2 and NaCl has the greater lattice enthalpy.
🔗Go deeper — other people’s work
These are external resources, not mine. If one stops working, tell me and everything above it on this page still stands.
- PhET — Salts and Solubility and Sugar and Salt Solutions, which show the hydration shell forming around each ion as the lattice dissolves.
- The Royal Society of Chemistry periodic table — ionic radii for every common ion, if you want to test the radius argument against real numbers rather than assertions.
- Any crystal-structure viewer (for example the VESTA or CrystalMaker demonstrations) — rotating a rock-salt lattice makes the “no molecules” point immediate in a way no diagram does.