Q.Why does hydrogen occur in a diatomic form rather than in a monoatomic form under normal conditions?
A single hydrogen atom has the configuration — only one electron, which is far from the stable, filled duplet configuration of helium (). An isolated H atom is therefore highly reactive and thermodynamically unstable.
When two hydrogen atoms approach each other, their unpaired 1s electrons pair up to form a covalent bond, producing the diatomic molecule H2:
This process releases a large amount of energy — the H–H bond has a bond dissociation enthalpy of 435.88 kJ mol⁻¹, one of the strongest single bonds known — because each hydrogen atom in H2 now effectively shares a pair of electrons and attains the stable duplet (closed-shell, He-like) arrangement.
Because forming this bond is strongly energetically favourable, under normal conditions dihydrogen exists overwhelmingly as the diatomic molecule H2 rather than as free monoatomic hydrogen; free H atoms are found only under extreme conditions (very high temperature, electric discharge, or as very short-lived intermediates, e.g., in the atomic hydrogen torch).
Two H atoms combine to share their single electrons and attain a stable duplet, forming a strong H–H covalent bond (435.88 kJ/mol); this makes diatomic H2 vastly more stable than monoatomic H, so hydrogen occurs as H2 under normal conditions.
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