Study Guide

Bonding and physical properties

CIE A-Level ChemistryΒ· Unit 3: Chemical BondingΒ· 15 min read

1. Classification of Structures by Bondingβ˜…β˜…β˜†β˜†β˜†β± 4 min

πŸ“˜ Definition

Four main solid structure classes

All solid substances are classified into one of four groups based on their bonding and lattice arrangement, each with distinct physical properties.

Structure Type

Bonding within lattice

Forces between particles

Giant ionic

Ionic (electrostatic between ions)

Strong ionic bonds throughout the lattice

Simple molecular

Covalent (within discrete molecules)

Weak intermolecular forces between molecules

Giant covalent (macromolecular)

Covalent

Strong covalent bonds throughout the entire lattice

Giant metallic

Metallic (between cations and delocalized electrons)

Strong metallic bonds throughout the lattice

πŸ“ Worked Example

Classify each of the following substances by their structure type: (a) magnesium oxide (b) diamond (c) iodine (d) copper

  1. 1

    Magnesium oxide is formed from a metal cation () and non-metal anion (), so it forms a giant ionic lattice.

  2. 2

    Diamond is an allotrope of carbon where every carbon atom is covalently bonded to 4 other carbon atoms extending through the structure, so it is a giant covalent structure.

  3. 3

    Iodine is made of discrete molecules held together by weak London dispersion forces, so it is a simple molecular structure.

  4. 4

    Copper is a metal, so it forms a giant metallic lattice.

Exam tip:

Always state both the structure type and the type of bonding/force when answering explanation questions to gain full marks.

2. Melting and Boiling Point Trendsβ˜…β˜…β˜…β˜†β˜†β± 5 min

Melting and boiling point depend on the amount of energy required to overcome the attractive forces holding particles together in the solid/liquid lattice. Stronger forces require more energy, leading to higher melting and boiling points.

πŸ“˜ Definition

Melting Point

The temperature at which the solid and liquid phases of a substance are in equilibrium, when sufficient energy is available to overcome forces holding the solid lattice together.

πŸ“ Worked Example

Explain why sodium chloride has a much higher melting point than solid chlorine.

  1. 1

    First classify the structure of each substance: Sodium chloride is a giant ionic lattice, solid chlorine () is simple molecular.

  2. 2

    In sodium chloride, strong ionic bonds (electrostatic attractions between oppositely charged ions) extend throughout the entire lattice. A large amount of energy is required to break these strong bonds.

  3. 3

    In solid chlorine, only weak London dispersion forces between discrete molecules need to be overcome for melting. Covalent bonds within the molecules remain intact.

  4. 4

    The much stronger forces in sodium chloride result in a far higher melting point.

3. Electrical Conductivity and Solubilityβ˜…β˜…β˜…β˜†β˜†β± 4 min

A substance can only conduct electricity if it contains charged particles that are free to move through the structure. Solubility follows the rule 'like dissolves like': polar/ionic solutes dissolve in polar solvents, and non-polar solutes dissolve in non-polar solvents.

πŸ“ Worked Example

Explain why solid sodium chloride does not conduct electricity, but molten sodium chloride does.

  1. 1

    In solid sodium chloride, and ions are held in a fixed, regular lattice by strong ionic bonds. The charged ions are not free to move, so the solid cannot conduct electricity.

  2. 2

    When sodium chloride is melted, the ionic lattice breaks down, and the and ions become mobile.

  3. 3

    Mobile charged particles are now present, so molten sodium chloride can conduct electricity.

βœ“ Quick check

Test your understanding of solubility:

  1. Why is solid iodine insoluble in water?

    • Iodine is ionic and water is polar

    • Iodine is non-polar and cannot form strong interactions with polar water

    • The covalent bonds in are too strong to break

    • Water has a higher boiling point than iodine

    Reveal answer
    1 β€”

    Correct! Like dissolves like: non-polar iodine only dissolves well in non-polar solvents like hexane, not polar water.

4. Trends in Homologous Seriesβ˜…β˜…β˜…β˜…β˜†β± 5 min

For homologous series of simple molecular compounds (e.g. alkanes), boiling point increases with increasing carbon chain length. This is because larger molecules have greater surface area and stronger London dispersion forces between molecules.

πŸ“ Worked Example

Explain why the boiling point of pentane () is higher than that of ethane ().

  1. 1

    Both pentane and ethane are simple molecular alkanes, so only intermolecular London dispersion forces need to be overcome for boiling.

  2. 2

    Pentane has a larger molecular mass and greater molecular surface area than ethane, so the London dispersion forces between pentane molecules are stronger.

  3. 3

    More thermal energy is required to overcome the stronger intermolecular forces in pentane, so it has a higher boiling point than ethane.

5. Common Pitfalls

Wrong move:

Saying covalent bonds break when simple molecular substances melt/boil

Why:

Only intermolecular forces between molecules are overcome; covalent bonds within molecules remain intact

Correct move:

State that weak intermolecular forces between molecules are overcome, and covalent bonds do not break

Wrong move:

Claiming all giant covalent substances do not conduct electricity

Why:

Some giant covalent structures have free delocalized electrons

Correct move:

State that graphite and graphene conduct electricity, but diamond and silicon dioxide do not

Wrong move:

Saying solid ionic compounds conduct electricity because they contain ions

Why:

Ions in solid ionic lattices are fixed in place and not mobile

Correct move:

State that only molten or dissolved ionic compounds conduct electricity, because their ions are free to move

Wrong move:

Attributing higher boiling points of alcohols to stronger covalent bonds compared to alkanes

Why:

This confuses intramolecular covalent bonds with intermolecular forces

Correct move:

Explain that alcohols form hydrogen bonds between molecules, which are stronger than London dispersion forces in alkanes of similar mass

Wrong move:

Claiming all metals have high melting points

Why:

Some metals like mercury and group 1 metals have weak metallic bonding and low melting points

Correct move:

State that most metals have high melting points, but note exceptions when answering questions

6. Quick Reference Cheatsheet

Structure Type

Typical mp/bp

Electrical Conductivity

Solubility in Water

Giant Ionic Lattice

High

Solid: No; Molten/Aqueous: Yes

Usually soluble

Simple Molecular

Low

No (unless ionises in water)

Soluble only if polar/H-bonding possible

Giant Covalent

Very High

No (except graphite/graphene)

Insoluble

Giant Metallic

Mostly high (Hg: liquid RT)

Yes (solid and molten)

Insoluble (usually react instead of dissolving)

7. Frequently Asked

Do I need to specify the type of force to get full marks?

Yes. CIE examiners require you to explicitly name the type of force/bonding to award full marks for explanation questions.

When this came up on past exams

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

  • 2023 Β· 1

    Bonding and conductivity question

  • 2022 Β· 2

    Melting point comparison question

  • 2021 Β· 4

    Trend in boiling point question

Going deeper

What's Next

Understanding the link between bonding and physical properties is foundational for almost all other topics in A-Level Chemistry. In organic chemistry, you will apply this knowledge to explain trends in boiling points of different functional groups and predict solubility of organic compounds. In inorganic chemistry, it helps explain periodic trends in melting and boiling points of Period 3 elements and their compounds. This topic also underpins further study of crystal structures, and the energetics of bond breaking and forming in thermodynamics. Mastery of this subtopic is essential to score full marks on common explanation questions in both Paper 1 and Paper 2 of CIE 9701.