SO3 Lewis Structure
Sulfur trioxide · The anhydride of sulfuric acid, formed when sulfur dioxide is oxidised.
The SO3 Lewis structure has 24 valence electrons, drawn as two S–O bonds and one S=O bond, with eight lone pairs in total. The central S is sp2 hybridized, which makes it a trigonal planar molecule with a bond angle of 120 degrees. SO3 is nonpolar: the bond dipoles are all the same size and the shape places them symmetrically around the central S, so they cancel exactly. There are three equivalent resonance structures.
- 24 valence e−
- trigonal planar
- 120° bond angle
- sp2
- nonpolar
Calculated properties
| Total valence electrons | 24 |
|---|---|
| Bonding electrons | 8 (4 shared pairs) |
| Nonbonding electrons | 16 (8 lone pairs) |
| Lone pairs on S | 0 |
| Electron domains (steric number) | 3 |
| VSEPR notation | AX3 |
| Electron geometry | trigonal planar |
| Molecular geometry | trigonal planar |
| Bond angle | 120° |
| Hybridization | sp2 |
| Polarity | nonpolar |
| Formal charges | S: +2, O: -1, O: -1 |
| Resonance structures | 3 |
| Molar mass | 80.057 g/mol |
How to draw the SO3 Lewis structure
Step through it. The bar shows how much of the 24-electron budget is spent at each stage - it never grows, which is the whole constraint.
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Skeleton. Join every connected pair with one bond. 3 bonds spends 6 electrons.
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Outer octets. Spend electrons as lone pairs on the outer atoms. That uses the entire budget, and the central atom has nothing left over.
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Multiple bonds. The central atom is still short of an octet, so one lone pair on the outer atoms moves in to be shared. The electron count does not change - the same electrons are just counted by both atoms now.
The reasoning at each step
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Count the valence electrons
Add up the outer-shell electrons every atom brings. That total is the budget for the whole structure - every line and every dot has to come out of it, and nothing may be added.
6 (S) + 3 x 6 (O) = 24 valence electrons -
Choose the central atom
S is the least electronegative atom here, so it takes the centre. Hydrogen is never central: it can only form one bond.
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Join everything with single bonds first
Every connection starts as one shared pair. Draw them all before worrying about double bonds - the arithmetic in the next step is what tells you where the double bonds have to go.
3 bonds x 2 = 6 electrons used, 18 left -
Work out how far short you are
Add up what every atom still needs to fill its shell - eight electrons for most atoms, two for hydrogen - minus what its single bonds already give it. Compare that with the electrons you have left. The difference decides everything that follows.
needs 20, has 18, short by 2 -
Turn the shortfall into multiple bonds
Being short means atoms have to share more. Every pair that moves from a lone pair into a bond counts twice - once for each atom - so a shortfall of 2 is covered by 1 extra shared pair. That is where the double bond comes from.
S=O3 -
Fill in the lone pairs
Every electron not in a bond sits as a lone pair on an atom. Each atom takes exactly what it needs to finish its shell - there is no choice left at this point.
O1: 3, O2: 3, O3: 2 (16 electrons) -
Check the central atom
S ends up with a full octet. Every electron in the budget is now placed.
S: 8 bonding + 0 nonbonding = 8 -
Check the formal charges
Formal charge is valence electrons, minus lone-pair electrons, minus the number of bonds. They are not real charges, but they have to add up to the overall charge on the species, and a structure that keeps them small is the better one.
S: 6 - 0 - 4 = +2 ; O1: 6 - 6 - 1 = -1 ; O2: 6 - 6 - 1 = -1 -
Work out the shape
Count the electron domains on S: 3 bonded groups. A double or triple bond still counts as one domain, because it points in one direction. That gives trigonal planar electron geometry; ignore the lone pairs and the atoms themselves sit in a trigonal planar arrangement.
steric number 3 -> sp2 -> trigonal planar, bond angle 120 -
Decide whether it is polar
The bond dipoles are all the same size and the shape places them symmetrically around the central S, so they cancel exactly.
dipoles cancel -> nonpolar
Resonance structures
More than one drawing gives the same electron count and the same formal charges, and no single one of them is the real molecule. SO3 is an average of the 3 structures below, which is why bonds that look different here are actually identical in the real molecule.
The expanded-octet version
Courses disagree about SO3. The structure at the top of this page obeys the octet rule and leaves formal charges behind. The one below puts more than eight electrons on the central atom and brings every formal charge to zero. Check which convention your course uses.
Is SO3 polar or nonpolar?
SO3 is nonpolar. The bond dipoles are all the same size and the shape places them symmetrically around the central S, so they cancel exactly.
| Bond | Electronegativity difference | Character |
|---|---|---|
| S–O | 0.86 | polar covalent |
Common questions
How many valence electrons does SO3 have?
SO3 has 24 valence electrons. 8 of them are in bonds and 16 sit in lone pairs.
What is the molecular geometry of SO3?
SO3 is a trigonal planar molecule. The central S has 3 bonded groups, a steric number of 3, which gives trigonal planar electron geometry and a trigonal planar molecule.
What is the bond angle in SO3?
The bond angle in SO3 is 120 degrees. That is the ideal trigonal planar angle, and nothing distorts it here.
What is the hybridization of SO3?
The central S in SO3 is sp2 hybridized. Steric number 3 means 3 orbitals have to be mixed, which is exactly what sp2 gives you.
Is SO3 polar or nonpolar?
SO3 is nonpolar. The bond dipoles are all the same size and the shape places them symmetrically around the central S, so they cancel exactly.
Does SO3 have resonance structures?
Yes. SO3 has three equivalent resonance structures. The real molecule is not any one of them - it is an average, so every bond that differs between the drawings is really the same length in the actual molecule.
Does SO3 obey the octet rule?
It can be drawn either way, and different courses teach different conventions. The octet structure keeps eight electrons on every atom but leaves formal charges behind. The expanded-octet structure puts more than eight electrons on the central atom and brings every formal charge to zero. Both are shown on this page.