Q.Why is dioxygen a gas but sulphur a solid?
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Start your 14-day free trial to unlock the full solution →Step 1: Bonding in oxygen.
Oxygen's small atomic size allows effective sideways (–) overlap between the p-orbitals of two oxygen atoms, forming a strong double bond (one + one ). Oxygen therefore exists as small, light diatomic molecules, .
Step 2: Weak intermolecular forces in .
Since molecules are small and non-polar, the only intermolecular attraction between them is weak van der Waals (London dispersion) force. This is too weak to hold the molecules together as a condensed phase at ordinary temperature, so oxygen exists as a gas.
Step 3: Bonding in sulphur.
Sulphur atoms are considerably larger than oxygen atoms, so effective – overlap between two S atoms is not possible — sulphur cannot form a stable double bond analogous to . Instead, sulphur catenates through single S–S () bonds.
Step 4: Consequence — and solid state. …
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