Essential Concepts & Key Facts
High-yield conceptual summaries for competitive exams and rapid revision.
- Diamond and graphite are allotropes of elemental carbon, meaning they consist of identical carbon atoms arranged in differing crystal structures.
- Diamond is the hardest known naturally occurring mineral, scoring a maximum 10 on the Mohs mineral hardness scale.
- Graphite is exceptionally soft and flaky, scoring between 1 and 2 on the Mohs hardness scale, allowing it to be used as pencil lead.
- In diamond, each carbon atom is sp3 hybridized, forming four strong covalent bonds directed toward the corners of a regular tetrahedron.
- The bond angle in diamond is 109.5°, and all carbon-carbon covalent bond lengths are equal at 0.154 nanometres (1.54 Å).
- The interlocking three-dimensional tetrahedral network of diamond resists mechanical deformation uniformly from all spatial directions.
- In graphite, each carbon atom is sp2 hybridized, forming strong covalent bonds with only three adjacent carbon atoms within a 2D planar sheet.
- The bond angle within graphite sheets is 120°, producing a continuous two-dimensional hexagonal honeycomb network of carbon rings.
- The carbon-carbon bond length within a graphite layer is 0.142 nanometres, which is actually shorter and stronger than the individual bonds in diamond.
- Adjacent parallel layers in graphite are separated by a relatively wide distance of 0.335 nanometres and bound only by weak Van der Waals forces.
- The weak Van der Waals forces allow graphite layers to easily slide over one another, making graphite an effective dry solid lubricant.
- In diamond, all four valence electrons are localized in covalent bonds, making diamond an electrical insulator with a wide band gap of ~5.5 eV.
- In graphite, the fourth unhybridized valence electron forms delocalized pi (Ï€) bonds across the layers, allowing free electron flow and high electrical conductivity.
- Diamond is an outstanding thermal conductor—conducting heat roughly five times better than copper—because vibrations (phonons) travel rapidly through its rigid lattice.
- At standard ambient temperature and pressure, graphite is the thermodynamically stable form of carbon, while diamond is technically metastable.
- Diamond does not spontaneously transform into graphite under normal conditions because the kinetic activation energy barrier is extraordinarily high.
- Natural diamonds form under extreme mantle conditions: temperatures exceeding 1,000°C and pressures above 4.5 to 6 gigapascals at depths of 150 to 200 km.
- Synthetic diamonds are manufactured industrially using High-Pressure High-Temperature (HPHT) presses and Chemical Vapor Deposition (CVD) methods.
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