Sharing electrons: how covalent bonds form, what shapes molecules take, and why some molecules are polar and stick together.
This is the Standard Level lesson, covering S2.2.1–S2.2.10. Taking Chemistry at Higher Level? The HL version adds sigma & pi bonds, resonance, formal charge and the shapes for 5 and 6 electron domains.
A covalent bond is the electrostatic attraction between a shared pair of electrons and the two nuclei. Atoms share to reach a full outer shell (the octet rule). Sharing more pairs gives double and triple bonds — which are shorter and stronger. A coordinate (dative) bond is a covalent bond where both shared electrons come from the same atom.
| Bond | Shared pairs | Example | Length | Strength |
|---|---|---|---|---|
| Single C–C | 1 | ethane | longest | weakest |
| Double C=C | 2 | ethene | shorter | stronger |
| Triple C≡C | 3 | ethyne | shortest | strongest |
More shared pairs pull the nuclei closer, so as bond order rises the bond gets shorter and stronger.
The VSEPR model says electron domains (bonding pairs and lone pairs) around a central atom repel and spread out as far as possible. Lone pairs repel a little more strongly, squeezing bond angles slightly. Pick a molecule:
Electronegativity is how strongly an atom pulls the shared electrons. If the two atoms differ, the bond is polar — the more electronegative atom gets a partial negative charge (δ−), the other δ+. Whether the whole molecule is polar depends on the shape: if equal bond dipoles point in opposite directions, they cancel.
Covalent bonds are strong, but separate molecules are held to each other by weaker intermolecular forces. These decide melting/boiling points. Click each type:
Some substances aren't made of small molecules at all: covalent network solids like diamond and silicon dioxide are giant lattices of atoms held entirely by strong covalent bonds — so they have very high melting points and are hard. Graphite is a network too, but its layers slide (soft, a lubricant) and its delocalised electrons let it conduct.
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