Valence Bond and Molecular Orbital Theory: What Each Explains

Inorganic Chemistry · Bonding

Valence Bond and Molecular Orbital Theory: What Each Explains

Two descriptions of the same bonding, each succeeding where the other fails, and knowing which to reach for is the practical skill.

BSc & MSc · Inorganic Chemistry · Concept

The short answer: Valence bond theory builds bonds from overlapping atomic orbitals and explains geometry naturally through hybridisation. Molecular orbital theory combines atomic orbitals across the whole molecule and explains magnetism, bond order in odd-electron species and spectra, which valence bond theory cannot.

The two pictures

Valence bondMolecular orbital
Electrons areLocalised in bonds between two atomsDelocalised over the whole molecule
Bonds formed byOverlap of atomic or hybrid orbitalsCombination of atomic orbitals into molecular ones
Geometry explained byHybridisationSymmetry of the combinations
Delocalisation handled byResonanceNaturally, without extra apparatus
MagnetismOften wrongCorrect

Where valence bond theory succeeds

It gives a natural and intuitive account of molecular shape. Mixing atomic orbitals into hybrids of the right number and orientation predicts geometry directly, and for most main-group molecules the prediction is correct and easily obtained.

It also connects well to the way chemists draw structures, since a line between two atoms corresponds directly to a shared pair in an overlapping orbital.

Where it fails

The oxygen molecule is the standard failure, and it is worth knowing precisely. Valence bond theory draws a double bond with all electrons paired, predicting a diamagnetic molecule. Oxygen is experimentally paramagnetic with two unpaired electrons. Molecular orbital theory places those two electrons singly in two degenerate antibonding orbitals and predicts exactly that. This single case is the strongest argument for the molecular orbital approach and appears in essentially every syllabus.

Other failures follow the same pattern — situations where electrons are not neatly paired in localised bonds:

  • Odd-electron species such as nitric oxide, where a localised structure cannot be drawn sensibly but a molecular orbital diagram gives a bond order of two and a half.
  • Fractional bond orders in ions, which come out directly from counting bonding and antibonding electrons.
  • Electronic spectra, which require defined energy levels for the whole molecule.
  • Delocalised systems, which valence bond theory can only describe by invoking resonance as an additional device.

Resonance versus delocalisation

Both theories describe the same physical reality, but they express it differently. Valence bond theory draws several localised structures and says the molecule is a hybrid of them. Molecular orbital theory simply constructs orbitals spread over the relevant atoms, so no hybrid is needed.

The molecular orbital account is more economical, but the resonance description remains useful because it connects to conventional structural drawings. Stating that they are alternative descriptions rather than competing claims is the accurate position.

Which to use

Question aboutUse
Molecular shape and bond anglesValence bond with hybridisation, or VSEPR
Magnetic behaviourMolecular orbital
Bond order in ions or odd-electron speciesMolecular orbital
Comparing bond lengths in a seriesMolecular orbital, through bond order
Reaction mechanism drawingValence bond, since it matches structural notation
Electronic spectraMolecular orbital

In practice chemists use both, choosing whichever answers the question at hand. Presenting them as complementary rather than as one being correct is what an examiner is looking for.

Frequently asked questions

Why does valence bond theory get oxygen wrong?

Because it forces electrons into localised pairs, and the correct description has two unpaired electrons in degenerate antibonding orbitals spread over both atoms.

Is hybridisation a real physical process?

No. It is a mathematical construction that produces orbitals of the right shape and orientation to match observed geometry. Atoms do not hybridise before bonding.

Can molecular orbital theory explain shape?

Yes, through symmetry arguments and correlation diagrams, but the analysis is considerably more involved than hybridisation for simple molecules, which is why the valence bond account remains in use.

Which theory is correct?

Both are approximations to the same underlying quantum mechanics, and each becomes exact in the limit of a complete treatment. They are complementary rather than competing.

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