Cambridge IGCSE·Co-ordinated Sciences 0654·Chemistry
Chemical Bonding
Key knowledge — Chemical Bonding
Key facts & rules
- Ionic bonding: metal loses electrons (→ cation) + non-metal gains electrons (→ anion) → electrostatic attraction.
- Ionic compounds: high melting point, conduct electricity when dissolved or molten, form crystals.
- Covalent bonding: non-metals share pairs of electrons.
- Simple molecular: low melting/boiling point, do NOT conduct electricity (e.g. H₂O, CO₂, CH₄).
- Giant covalent: very high melting point, hard, do NOT conduct electricity (except graphite). E.g. diamond, SiO₂.
- Metallic bonding: lattice of positive ions surrounded by a 'sea' of delocalised electrons.
- Metals: conduct electricity/heat, malleable, ductile — because of delocalised electrons.
- Hydrogen bonds: strong intermolecular forces in water and between N−H/O−H groups.
- Van der Waals forces: weak, temporary dipole attractions — exist between ALL molecules.
IGCSE Chemistry — Chemical bonding
707 Cambridge IGCSE 0654 chemistry past paper questions on chemical bonding, organised by subtopic. Pick a subtopic to start practising.
About chemical bonding on IGCSE 0654
Ionic, covalent and metallic bonding, dot-and-cross diagrams, and how structure explains the properties of substances.