IB Chemistry SL Topic 2 — Covalent Bonding Paper 1 & 2 Core skill ~12 min read

Lewis (Electron Dot) Formulas

A Lewis formula is a drawing that shows every single outer electron in a molecule — the pairs being shared and the pairs that are not. Follow the same four steps every time and these become some of the easiest marks in the paper.

📚 What you need to know

What counts as a Lewis formula

Here is the trap. If you draw chlorine as Cl–Cl, you have shown the bond but you have not shown the six lone pairs on each atom. That is a structural formula, not a Lewis formula, and it will not get the mark.

A Lewis formula has to account for every outer electron. You can show a pair however you like:

Dots and crosses do not mean the electrons are actually different. All electrons are identical. We colour them differently only so we can see where each one started.

The four steps

🧩 Drawing any Lewis formula

  1. Count the total valence electrons. Add up the outer electrons of every atom. (For an ion: add 1 for each negative charge, take away 1 for each positive charge.)
  2. Draw the skeleton. Put the least electronegative atom in the middle and arrange the others around it. Hydrogen always goes on the outside.
  3. Add the bonding pairs — one pair between each joined pair of atoms. Then add lone pairs to the outer atoms until each has 8 (hydrogen stops at 2).
  4. Check. Have you used exactly the number of electrons from step 1? Does every atom have a full shell? If the central atom is short, pull a lone pair in to make a double bond.

Worked through: methane, CH4

Step 1 — count. Carbon brings 4, each hydrogen brings 1. Total = 4 + (4 × 1) = 8 electrons, which is 4 pairs.

Step 2 — skeleton. Carbon in the middle (hydrogen can never be central), four hydrogens around it.

Step 3 — add pairs. Four bonding pairs uses up all 8 electrons, so there is nothing left for lone pairs.

Step 4 — check. Carbon has 8 electrons around it. Each hydrogen has 2. Done.

METHANE CH₄CHHHH4 bonding pairs, no lone pairs
Methane. All eight valence electrons are used up in the four bonding pairs, so there are no lone pairs anywhere.

Molecules with lone pairs

Ammonia and water are built the same way, but this time the bonding pairs do not use up all the electrons — what is left over stays on the central atom as lone pairs.

AMMONIA NH₃WATER H₂ONHHH3 bonding pairs + 1 lone pairOHH2 bonding pairs + 2 lone pairs
Ammonia keeps one lone pair on the nitrogen; water keeps two on the oxygen. Both still have exactly four pairs in total.
Why lone pairs matter so much. They are invisible in a formula like H2O, but they decide the shape of the molecule and its polarity. Miss a lone pair here and every answer that follows will be wrong — which is exactly why you always draw the Lewis formula first.

When the outer atoms have lone pairs too

Halogens bring 7 electrons each. One goes into the bond, and the other six sit as three lone pairs. Tetrachloromethane shows this nicely:

CCl4 = 4 + (4 × 7) = 32 electrons = 16 pairs. Four pairs are used for the C–Cl bonds, so 12 pairs are left — three on each chlorine.

TETRACHLOROMETHANE CCl₄CClClClCleach Cl has 3 lone pairs — 12 lone pairs in total
Tetrachloromethane. Each chlorine uses one electron for bonding and holds the other six as three lone pairs.
WORKED EXAMPLE

How many valence electrons are there in a molecule of methanol, CH3OH?

Add up the outer electrons, atom by atom 1 carbon (group 14), 4 hydrogens, 1 oxygen (group 16). C: 1 × 4 = 4 H: 4 × 1 = 4 O: 1 × 6 = 6 Total = 14 electrons = 7 pairs 5 bonding pairs (3 C–H, 1 C–O, 1 O–H) and 2 lone pairs on the oxygen.

When there are not enough electrons to go round

Sometimes you finish step 3 and the central atom is still short. Don’t add more electrons — you don’t have any. Instead, take a lone pair from an outer atom and slide it into the bond to make a double bond.

CARBON DIOXIDE CO₂HYDROGEN CYANIDE HCNCOOtwo double bondsCHNone single bond + one triple bond
When single bonds leave the central atom short, an outer atom shares a second or third pair instead.

The two exceptions you must be able to draw

Beryllium and boron are the famous rule-breakers. Both make stable molecules with an incomplete octet, and both are popular exam questions precisely because students “correct” them by mistake.

BERYLLIUM CHLORIDE BeCl₂BORON TRIFLUORIDE BF₃BeClClonly 4 electrons around BeBFFFonly 6 electrons around B
Beryllium is stable with four electrons and boron with six. The outer atoms still reach a full octet.

💡 Exam tip

⚠️ Common mix-up

Up next: Double and Triple Bonds — what happens when atoms share two or three pairs, and why that makes bonds shorter and stronger.

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