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Q.Explain the difference in properties of diamond and graphite on the basis of their structure.

Andhra Pradesh BieapBIEAP Intermediate Board (1st Year) 2025Subjective· 4mImportance★★★★★
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Diamond's sp³, 3-D covalent network makes it hard and insulating, while graphite's sp², 2-D layered structure with delocalised π-electrons makes it soft/slippery and electrically conducting.

Diamond:

  • Each carbon atom is sp³ hybridised and forms 4 strong sigma (σ) covalent bonds to 4 neighbouring carbon atoms, arranged tetrahedrally (bond angle 109.5°, C–C bond length ≈ 154 pm).
  • This bonding extends in all three dimensions, giving a rigid, giant covalent (network) crystal structure with no distinct 'molecules'.
  • Since all 4 valence electrons of every carbon are used up in localised σ-bonds, there are no free/mobile electrons — diamond is an electrical insulator.
  • The strong, uniform 3-D network of covalent bonds makes diamond extremely hard (hardest known natural substance) and gives it a very high melting point, since breaking the crystal requires breaking many strong covalent bonds in all directions.
  • Diamond is transparent with a high refractive index, used in cutting tools/abrasives and as gemstones.

Graphite:

  • Each carbon atom is sp² hybridised and forms 3 σ-bonds to 3 neighbouring carbons within a plane, producing flat, hexagonal (honeycomb) layers (C–C bond length ≈ 141.5 pm, shorter/stronger than in diamond, with partial double-bond character).
  • The fourth valence electron of each carbon occupies an unhybridised p-orbital perpendicular to the layer; these p-orbitals overlap sideways over the whole layer to form a delocalised π-electron cloud extending across each layer.
  • Successive layers are held together only by weak van der Waals forces, with a relatively large interlayer spacing (≈ 340 pm). …

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