Molecular orbital (MO) theory says that when two atoms bond, their atomic orbitals don't just overlap — they mathematically combine (LCAO) into brand-new molecular orbitals that span the whole molecule. Every combination produces one lower-energy bonding orbital (constructive overlap, extra electron density between the nuclei) and one higher-energy antibonding orbital (destructive overlap, a node between the nuclei) marked with an asterisk (*).
O₂ is one of the only common gases visibly attracted to a strong magnet — pour liquid oxygen between the poles of a magnet and it clings there — a direct, everyday consequence of the two unpaired electrons molecular orbital theory predicts in its π2p* orbitals, something the older Lewis-structure model completely misses.
Combine two atoms' orbitals into a 3D molecular orbital energy ladder, watch electrons fill bonding and antibonding clouds in order, and read off the resulting bond order and magnetic behaviour.
Atomic orbitals combine into bonding (σ, π) and antibonding (σ*, π*) molecular orbitals. Electrons fill from lowest energy up, obeying Hund's rule in the degenerate π pair — the exact mechanism behind O₂'s paramagnetism and He₂'s non-existence.
Pick a diatomic molecule from H₂ to Ne₂, adjust bond length to see lobe overlap change, and watch bond order and magnetism update instantly. Replay the fill animation to see Aufbau and Hund's rule in action.
Liquid oxygen is visibly attracted to a strong magnet because of the two unpaired electrons in its π2p* orbitals — a property Lewis dot structures cannot explain but molecular orbital theory predicts exactly.