Study Guide

Ionic bonding

Chemistry· 9701 Section 3.1· 12 min read

1. Formation of Ionic Bonds★★☆☆☆⏱ 3 min

Ionic bonds form when atoms with low ionisation energy (typically group 1 and 2 metals) transfer their outermost valence electrons to atoms with high electron affinity (typically group 16 and 17 non-metals). This process produces full outer electron shells for both species, generating stable oppositely charged ions.

📘 Definition

Ionic bond

M+XM++X\text{M} + \text{X} \rightarrow \text{M}^+ + \text{X}^-

Strong non-directional electrostatic attraction between a positively charged cation and negatively charged anion

📐 Worked Example

Illustrate the full electron transfer process that forms magnesium oxide (MgO) from neutral magnesium and oxygen atoms

  1. 1

    Step 1: Neutral Mg atom has electron configuration 1s²2s²2p⁶3s², it loses 2 valence electrons to form Mg²⁺ with full outer shell 1s²2s²2p⁶

  2. 2

    Step 2: Neutral O atom has electron configuration 1s²2s²2p⁴, it gains the 2 lost electrons to form O²⁻ with full outer shell 1s²2s²2p⁶

  3. 3

    Step 3: Strong electrostatic attraction forms between Mg²⁺ and O²⁻ to create the ionic compound MgO

2. Deducing Ionic Compound Formulae★★☆☆☆⏱ 3 min

All ionic compounds are electrically neutral overall, so total positive charge from cations must exactly cancel total negative charge from anions. For polyatomic ions, you must treat the entire charged group as a single unit, using brackets if multiple copies are required.

📐 Worked Example

Deduce the correct empirical formula for aluminium sulfate, given Al forms Al³⁺ and sulfate is SO₄²⁻

  1. 1

    Step 1: Identify charges: Al = +3, SO₄ = -2

  2. 2

    Step 2: Find lowest common multiple of 3 and 2 = 6, so total positive charge = +6, total negative charge = -6

  3. 3

    Step 3: Number of Al³⁺ ions = 6 / 3 = 2, number of SO₄²⁻ ions = 6 / 2 = 3

  4. 4

    Step 4: Write formula with brackets for multiple polyatomic ions: Al₂(SO₄)₃

✓ Quick check

Test your understanding of charge balancing

  1. What is the correct formula for calcium nitrate?

    • CaNO₃

    • Ca(NO₃)₂

    • Ca₂NO₃

    • CaN₂O₆

    Reveal answer
    Ca(NO₃)₂

    Ca forms Ca²⁺, nitrate is NO₃⁻, so 2 nitrate ions balance the +2 charge

3. Giant Ionic Lattice Structure★★★☆☆⏱ 3 min

Ionic compounds do not exist as discrete molecules. Instead, ions pack into a regular repeating 3D giant ionic lattice, where each ion is surrounded by a fixed number of oppositely charged neighbouring ions called its coordination number. The exact packing arrangement depends on the relative size of the cations and anions.

📐 Worked Example

Explain why solid sodium chloride has a 6:6 coordination number

  1. 1

    Step 1: Radius ratio of Na⁺ / Cl⁻ = ~0.52, which falls in the range for octahedral coordination

  2. 2

    Step 2: Each Na⁺ ion is surrounded by 6 adjacent Cl⁻ ions at equal distance

  3. 3

    Step 3: Each Cl⁻ ion is in turn surrounded by 6 adjacent Na⁺ ions, giving the 6:6 ratio

4. Physical Properties of Ionic Solids★★★☆☆⏱ 3 min

All properties of ionic compounds are directly derived from their strong electrostatic ionic bonds and fixed lattice arrangement. You will be expected to link each property explicitly to the structure in exam answers.

📐 Worked Example

Explain why magnesium oxide has a much higher melting point (~2800°C) than sodium chloride (~801°C)

  1. 1

    Step 1: MgO has 2+ and 2- charged ions, while NaCl only has 1+ and 1- charged ions

  2. 2

    Step 2: Electrostatic force between ions is proportional to the product of their charges, so MgO ionic bonds are far stronger

  3. 3

    Step 3: Much more thermal energy is required to overcome the stronger bonds in MgO, leading to a far higher melting point

5. Ionic Radii Trends★★★☆☆⏱ 2 min

Ionic radius increases down any group of the periodic table, as new electron shells are added further from the nucleus. For an isoelectronic series (ions with identical electron configuration), ionic radius decreases as nuclear charge increases.

Ion

Nuclear charge

Ionic radius / nm

N³⁻

+7

0.171

O²⁻

+8

0.140

F⁻

+9

0.133

Na⁺

+11

0.095

Mg²⁺

+12

0.065

6. Common Pitfalls

Wrong move:

Describing ionic bonds as attraction between two neutral atoms

Why:

Ionic bonds only exist after electron transfer, between charged ions not neutral atoms

Correct move:

Explicitly state the bond is electrostatic attraction between oppositely charged cations and anions

Wrong move:

Forgetting brackets around polyatomic ions when writing formulae

Why:

This leads to incorrect subscript values for atoms inside the polyatomic ion group

Correct move:

Enclose all polyatomic ions in brackets if you have more than one of them in the formula

Wrong move:

Stating solid ionic compounds conduct electricity

Why:

Ions are locked in a fixed lattice and cannot move to carry charge

Correct move:

Specify conductivity only occurs when the ionic compound is molten or dissolved in water

Wrong move:

Claiming ionic compounds form simple covalent molecules

Why:

Ionic lattices are giant extended structures with no discrete molecular units

Correct move:

Refer to the structure as a giant ionic lattice, never use the term 'ionic molecule'

Wrong move:

Saying ionic radius increases across an isoelectronic series

Why:

Higher nuclear charge pulls the same number of electrons closer to the nucleus

Correct move:

State ionic radius decreases as nuclear charge rises for ions with identical electron configuration

7. Quick Reference Cheatsheet

Property

Ionic solid behaviour

Explanation

Melting/boiling point

Very high

Strong electrostatic bonds require large energy to break

Electrical conductivity

Only conductive molten/dissolved

Mobile free ions act as charge carriers

Solubility

Soluble in polar solvents like water

Polar water molecules hydrate separated ions

Brittleness

Brittle, shatters on impact

Layers shift, aligning like charges that repel each other

8. Frequently Asked

Why do ionic compounds only conduct electricity when molten or dissolved?

Solid ionic lattices have fixed ions that cannot move to carry charge. When molten or dissolved, ions become free to flow and act as mobile charge carriers.

When this came up on past exams

AI-estimated based on syllabus patterns — cross-check with official past papers for accuracy. Use only as revision-focus signals.

  • 2024 · Paper 2

    Describe ionic bonding in sodium chloride

  • 2023 · Paper 4

    Explain melting point trend of group 1 halides

  • 2022 · Paper 1

    Multiple choice on ionic radius trends

Going deeper

What's Next

Mastering ionic bonding gives you a foundational framework to compare against other chemical bond types, which is a core 6-8 mark extended question topic in almost every CIE A-Level Chemistry paper. You will next explore covalent bonding, where electrons are shared rather than transferred, before moving on to calculate lattice energy values using Born-Haber cycles, and then compare the properties of metallic bonding to ionic and covalent structures. This full set of bond type comparisons is heavily weighted for Paper 2 and Paper 4 structured questions, so ensure you can clearly distinguish the formation, structure and properties of each bond family.