Topic 3 of 5
Covalent bonding and molecules
Read shared electron pairs and distinguish bonds within molecules from attractions between them.
O-Level 2026 SEC G3 2027
Covalent bonding: count shared pairs
Each shared pair is one bond. Unshared electrons still count towards the outer shell.
Non-metal atoms form a covalent bond by sharing a pair of electrons. Usually each atom contributes one electron. The shared pair counts towards both outer shells, commonly giving a noble-gas arrangement: two electrons for hydrogen, eight for the other atoms shown here.
Each dot or cross is one outer-shell electron. A pair between atoms is shared; a pair beside one atom is a lone pair.
Hydrogen (H2)
- Left H
- Right H
Oxygen (O2)
- Left O
- Right O
Water (H2O)
- Oxygen
- Hydrogens
Methane (CH4)
- Carbon
- Hydrogens
Carbon dioxide (CO2)
- Carbon
- Oxygens
Ammonia (NH3)
- Nitrogen
- Hydrogens
Only outer-shell electrons are shown. Shared electrons count towards both bonded atoms' outer shells. Dots and crosses identify the source atom, not different types of electron.
| Molecule | Shared pairs | Lone pairs |
|---|---|---|
| H2 | One pair between the H atoms: a single bond. | None. |
| O2 | Two pairs between the O atoms: a double bond. | Two on each O. |
| H2O | One pair in each of two O-H bonds. | Two on O. |
| CH4 | One pair in each of four C-H bonds. | None on C. |
| CO2 | Two pairs in each C=O bond: O=C=O. | Two on each O; none on C. |
Worked example
Deduce an unfamiliar diagram: ammonia
Nitrogen has five outer electrons. How are electrons arranged in NH3?
- Nitrogen needs three more electrons around it; each hydrogen needs one.
- Form three shared pairs, one between N and each H. These give three N-H bonds.
- Six electrons surround N in bonds. Its remaining two electrons form one lone pair.
- Check: eight electrons around N, two around each H, and eight outer electrons in total.
Three single N-H bonds and one lone pair on nitrogen. Sharing fills shells without transferring electrons to form ions.
Strong bonds inside; weaker attractions between
Melting a molecular substance separates molecules without breaking them apart.
Methane and iodine have simple molecular structures: many separate molecules. Strong covalent bonds hold atoms together within each molecule. Weaker intermolecular forces attract one molecule to another. These are two different levels of attraction.
Solid iodine
Liquid iodine
- Covalent bond within a molecule
- Attraction between molecules
Melting overcomes enough intermolecular attractions to let the molecules move past one another. It does not break the covalent bonds inside them.
Simplified snapshots, not the measured crystal structure or a simulation. Only a few intermolecular attractions are marked; they are still present in the liquid.
Simple molecular substances generally melt and boil at low temperatures compared with ionic lattices: relatively little energy overcomes their intermolecular forces. Methane is a gas at room temperature, while iodine is a solid. Simple molecular does not mean always gaseous; intermolecular attraction varies between substances.
Their pure solids and liquids generally do not conduct electricity: neutral molecules have no mobile ions or delocalised electrons to carry charge. A solution needs separate consideration: a molecular substance may form ions by reacting with water.