IB Chemistry SL Topic 2 — Covalent Bonding Paper 1 & 2 Core skill ~13 min read

Molecular Shapes

Molecules are 3D, and their shape is not random. Electron pairs are all negative, so they push each other as far apart as they can. Work out how many groups of electrons surround the central atom and the shape falls out automatically — that idea is called VSEPR.

📚 What you need to know

The idea in one sentence

All electron pairs are negative, and negative things repel. So the pairs around a central atom arrange themselves to get as far away from each other as possible. Once you know how many groups there are, geometry does the rest — there is only one way to space out two groups, one way to space out three, and one way to space out four.

VSEPR runs on three rules:

🧩 The three VSEPR rules

  1. All electron domains spread out as far apart as possible — bonding pairs and lone pairs alike.
  2. Lone pairs repel more strongly than bonding pairs, so they push the bonds closer together.
  3. A multiple bond counts as a single domain, because all its pairs sit in the same region of space.
Rule 3 is the one people forget. In CO2 there are four shared pairs around the carbon, but they sit in only two regions — one on each side. Two domains means linear, and that is why CO2 is a straight molecule.

Domain geometry is not the same as molecular shape

This distinction wins and loses a lot of marks, so get it straight now.

Ammonia is the perfect example. It has four domains, so its domain geometry is tetrahedral. But one of those domains is a lone pair, and you cannot see a lone pair — so the shape you describe is trigonal pyramidal.

Two domains — linear

Two groups get as far apart as possible by sitting on opposite sides of the central atom. That gives a straight line and a bond angle of 180°. Examples: CO2, BeCl2, ethyne (HC≡CH).

Three domains — trigonal planar

Three groups spread out in a flat triangle, all in the same plane, at 120° to each other. If all three are bonding pairs, the shape is trigonal planar. Examples: BF3, ethene, methanal.

LINEAR — 2 DOMAINSTRIGONAL PLANAR — 3 DOMAINSCOO180°CO₂  •  also BeCl₂, HC≡CHBFFF120°BF₃  •  also ethene, methanal
Two domains push to opposite sides; three domains spread into a flat triangle.

Three domains with one lone pair — bent

Swap one of those three domains for a lone pair and things change. The lone pair pushes harder, so the two remaining bonds get squeezed to about 118°. And because you cannot see the lone pair, the molecule looks bent, not triangular.

SO2 is the standard example. It has two S=O double bonds and one lone pair on the sulfur — three domains in total. (Sulfur ends up with 10 electrons here, which is fine: it is in period 3 and can expand its octet.)

Four domains — tetrahedral

Four groups cannot all fit in a flat plane and stay far apart, so they push out into 3D and form a tetrahedron with angles of 109.5°. When all four are bonding pairs the shape is tetrahedral: CH4, CCl4, NH4+.

BENT — 3 DOMAINS, 1 LONE PAIRTETRAHEDRAL — 4 DOMAINSSOO~118°SO₂  •  lone pair pushes the bonds inCHHHH109.5°CH₄  •  also NH₄⁺, CCl₄
The orange lobe is a lone pair. In SO₂ it squeezes the two bonds down to about 118°. In methane there are no lone pairs, so the full 109.5° is kept. Bold wedges point towards you, hashed bonds point away.

Four domains with lone pairs

Now start replacing bonds with lone pairs and watch the angle shrink each time:

TRIGONAL PYRAMIDAL — 1 LONE PAIRBENT — 2 LONE PAIRSNHHH~107°NH₃  •  angle squeezed from 109.5°OHH~104.5°H₂O  •  two lone pairs squeeze harder
Same tetrahedral arrangement of domains in both, but the lone pairs are invisible — so we describe the shapes as trigonal pyramidal and bent.

Why lone pairs push harder

A bonding pair is held between two nuclei, so it is pulled from both sides and stays fairly tucked in. A lone pair is attached to one nucleus only, so nothing pulls it away — it sits closer to the central atom and takes up more room. More room taken means more pushing, which is why the order of repulsion goes:

ORDER OF REPULSION — STRONGEST FIRSTlone pairlone pairstrongestlone pairbonding pairin betweenbonding pairbonding pairweakest>>lone pair – lone pair  >  lone pair – bonding pair  >  bonding pair – bonding pair
Two lone pairs repel each other most strongly of all, and two bonding pairs least.

Every time you swap a bonding pair for a lone pair, the bond angle drops by roughly 2.5°. That is the pattern behind the three most-tested molecules in the whole topic:

MORE LONE PAIRS, SMALLER BOND ANGLE104°105°106°107°108°109°110°H₂O2 lone pairs104.5°NH₃1 lone pair107°CH₄0 lone pairs109.5°each lone pair added pushes the bonding pairs closer together
Methane, ammonia and water all have four electron domains. The only thing that changes is how many of them are lone pairs.

Summary table

These six rows cover everything you need at Standard Level. If you can reproduce this table from memory, this topic is done.

Bonding pairsLone pairsTotal domainsDomain geometryMolecular shapeBond angle
202linearlinear180°
303trigonal planartrigonal planar120°
213trigonal planarbent~118°
404tetrahedraltetrahedral109.5°
314tetrahedraltrigonal pyramidal~107°
224tetrahedralbent~104.5°

🧩 How to answer any shape question

  1. Draw the Lewis formula first. Always. This is where you spot the lone pairs.
  2. Count the domains on the central atom — each bond (single, double or triple) is one, each lone pair is one.
  3. Read off the domain geometry: 2 → linear, 3 → trigonal planar, 4 → tetrahedral.
  4. Ignore the lone pairs and describe where the atoms are — that is your molecular shape.
  5. Adjust the angle down by about 2.5° for each lone pair present.
WORKED EXAMPLE

Deduce the shape and bond angle of the ammonium ion, NH4+.

Step 1 — Lewis formula Nitrogen makes four N–H bonds; the lone pair has been used to form the coordinate bond. Step 2 — count domains: 4 bonding, 0 lone Step 3 — 4 domains → tetrahedral geometry Step 4 — no lone pairs, so the shape is the same tetrahedral, 109.5° The angle is the full 109.5° because there is no lone pair left to squeeze it.
WORKED EXAMPLE

CO2 and H2O both have a central atom bonded to two other atoms. Explain why one is linear and the other is bent.

CO₂ — carbon has 2 double bonds, no lone pairs Each double bond counts as ONE domain, so there are only 2 domains. linear, 180° H₂O — oxygen has 2 bonds plus 2 lone pairs That is 4 domains → tetrahedral geometry, but 2 of them are invisible. bent, ~104.5° The difference is entirely down to the lone pairs on the oxygen.

💡 Exam tip

⚠️ Common mix-up

That completes the drawing-and-shapes half of covalent bonding. Next comes Bond Polarity — what happens when the two atoms in a bond don’t pull on the shared pair equally.

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