IB Chemistry SL Topic 2 — Covalent Bonding Paper 1 & 2 Structure & properties ~12 min read

Giant Covalent Structures

Usually covalent bonding stops after a few atoms and you get a molecule. Sometimes it doesn’t stop at all — the bonding just keeps going, atom after atom, through the entire crystal. That gives a giant covalent structure, and it behaves nothing like a normal molecular substance.

📚 What you need to know

What makes a structure “giant”

Think about the difference between CO2 and SiO2. Both are a group 14 element with oxygen, but carbon forms two double bonds and stops — you get a small molecule that is a gas at room temperature. Silicon instead forms four single bonds to four different oxygens, each of which bonds on to another silicon, and so on forever. The result is sand, which melts at about 1700 °C.

That is the whole idea. In a giant covalent structure, there is no edge to the bonding. To melt it you must break actual covalent bonds, and there are an enormous number of them.

Diamond

In diamond, every carbon atom uses all four of its outer electrons to make four single covalent bonds to four other carbons. The arrangement is tetrahedral with bond angles of 109.5°, repeated in three dimensions.

DIAMOND — EVERY CARBON BONDED TO FOUR OTHERSCCCCCbond angle 109.5° — a perfect tetrahedrondashed bonds continue — the network never ends4 strong covalentbonds per atomno molecules,no weak points
Every carbon in diamond is at the centre of its own tetrahedron. The dashed bonds show that the pattern keeps repeating in all directions.

Everything about diamond follows from that picture:

Silicon and silicon(IV) oxide are built the same way. In silicon, each Si bonds to four other Si atoms. In SiO2, each silicon bonds to four oxygens and each oxygen bridges two silicons — which is where the 1:2 ratio in the empirical formula comes from. Both are hard, high-melting and non-conducting, exactly like diamond.

Graphite

Graphite is also pure carbon, but each atom bonds to only three others. Those three bonds spread out at 120° into flat sheets of linked hexagons. The sheets then stack on top of each other, held together only by weak forces.

That leaves each carbon with one outer electron spare. It isn’t in a bond, so it becomes delocalised and can move freely between the layers.

GRAPHITE — FLAT LAYERS OF HEXAGONSweak forces between layers — they slide over each otherthe 4th outer electron of each carbon is delocalised, so graphite conducts3 covalent bonds per atom • 120°
Strong hexagonal sheets, weak forces between them, and delocalised electrons (red) free to move in the gaps.

Two of graphite’s famous properties come straight out of that structure:

Notice the trick here. Graphite is soft and has a very high melting point, which sounds contradictory. It isn’t: sliding layers apart only needs the weak forces broken, but melting means breaking the strong covalent bonds inside the layers.

Graphene and buckminsterfullerene

These two are close relatives of graphite, and the IB likes to test whether you can tell them apart.

GRAPHENE — ONE LAYER THICKBUCKMINSTERFULLERENE C₆₀a single sheet of graphitestrong, flexible, conducts well60 carbons in a ball: 20 hexagons + 12 pentagonsa molecule, not a giant structure
Graphene is one sheet of that same hexagonal pattern; C₆₀ is the pattern curled up into a closed ball of exactly 60 atoms.

💡 C60 is the odd one out

Summary table

DiamondGraphiteGrapheneC60SiO2
Bonds per atom43334 (Si), 2 (O)
Bond angle109.5°120°120°~120°109.5°
Melting pointVery highVery highVery highLowVery high
Conducts?NoYesYes, very wellSemiconductorNo
HardnessHardest knownSoft, slipperyStrong, flexibleSoft solidVery hard
Giant?YesYesYes (2D)NoYes
WORKED EXAMPLE

Diamond and graphite are both made of only carbon atoms. Explain why graphite conducts electricity but diamond does not.

Diamond: each carbon makes 4 covalent bonds All four outer electrons are used up in bonding. no free electrons → does not conduct Graphite: each carbon makes only 3 covalent bonds The 4th outer electron is not needed for bonding. it is delocalised and free to move → conducts
WORKED EXAMPLE

Explain why silicon(IV) oxide has a melting point of about 1700 °C while carbon dioxide is a gas at room temperature.

SiO₂ is a giant covalent structure Melting means breaking many strong covalent bonds throughout the lattice. a huge amount of energy is needed CO₂ is a simple molecular substance The covalent bonds stay intact; only the weak forces BETWEEN molecules have to be overcome. very little energy needed → gas at room temperature

⚠️ Common mix-up

Up next: Intermolecular Forces — the weak attractions between separate molecules, which turn out to explain almost every physical property of simple covalent substances.

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