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Worked Examples · Example 14.1

Q.C, Si and Ge have same lattice structure. Why is C insulator while Si and Ge intrinsic semiconductors?

Uttarakhand UbseTextbookSubjective· 2mImportance★★★★★
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The band gap energy (EgE_g) determines whether a material is an insulator or a semiconductor. Diamond (C) has a large Eg≈5.4 eVE_g \approx 5.4\ \text{eV}, making it an insulator, while Si (Eg≈1.1 eVE_g \approx 1.1\ \text{eV}) and Ge (Eg≈0.7 eVE_g \approx 0.7\ \text{eV}) have smaller gaps, allowing thermal excitation of electrons into the conduction band at room temperature.

The key lies in the band gap energy — the energy difference between the top of the valence band and the bottom of the conduction band. Even though C, Si, and Ge all crystallize in the diamond cubic structure (same lattice), their electronic properties differ dramatically because the size of the band gap changes as you go down Group 14.

  1. Why the band gap changes with atomic number.

    As we move from C → Si → Ge, the atomic radius increases and the valence electrons are less tightly bound to the nucleus. The overlap between atomic orbitals in the crystal becomes weaker, and the energy splitting between bonding (valence) and antibonding (conduction) states decreases. This directly reduces the band gap.

  2. Quantitative comparison of band gaps at room temperature:

    MaterialBand Gap EgE_g (eV)Classification
    Diamond (C)~5.4Insulator
    Silicon (Si)~1.1Semiconductor
    Germanium (Ge)~0.7Semiconductor
  3. The thermal energy available at room temperature.

    At room temperature, thermal energy can excite some valence electrons across the gap into the conduction band -- but only if the gap is small enough. Diamond's gap (≈5.4 eV\approx 5.4\ \text{eV}) is far too large for any appreciable thermal excitation, so its conduction band stays essentially empty and it behaves as an insulator. Silicon (≈1.1 eV\approx 1.1\ \text{eV}) and germanium (≈0.7 eV\approx 0.7\ \text{eV}) have gaps small enough that a meaningful number of electrons are thermally excited, giving both materials measurable intrinsic conductivity as semiconductors. …

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