Q.Carbon, silicon and germanium have four valence electrons each. These are characterised by valence and conduction bands separated by energy band gap respectively equal to , and . Which of the following statements is true?
The band gap energy decreases as we move down Group 14 in the periodic table. Carbon (diamond) has the largest gap, silicon a smaller one, and germanium the smallest. The correct order is , which corresponds to option (c).
The key idea here is that the band gap energy in semiconductors and insulators is not arbitrary — it is directly linked to the strength of the covalent bond and the size of the atom. Carbon, silicon, and germanium all belong to Group 14 and have four valence electrons each. In their solid state, they form a diamond-like crystal structure where each atom is covalently bonded to four neighbours.
Why does the band gap change as we go down the group? The valence electrons in a solid occupy bands — the valence band (filled with bonding electrons) and the conduction band (empty, higher energy). The energy gap between them, , is the minimum energy needed to promote an electron from a bonding state to a conducting state. A larger gap means the material is more insulating; a smaller gap means it is more semiconducting.
The trend is governed by two factors that work together:
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Atomic size and bond length: As we go from C to Si to Ge, the atomic radius increases. This means the distance between neighbouring atoms in the crystal also increases. A longer bond is weaker — the shared electrons are less tightly held. This reduces the splitting between bonding and antibonding energy levels, which directly shrinks the band gap.
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Electronegativity: Carbon is the most electronegative in the group. It holds its valence electrons very tightly, requiring more energy to free them. Silicon and germanium are less electronegative, so their electrons are more easily excited into the conduction band.
The result is a clear, monotonic decrease: diamond (carbon) has a band gap of about 5.5 eV (making it an insulator), silicon has about 1.1 eV, and germanium has about 0.67 eV. So the order is .
A common mistake is to think that because germanium is "heavier" it must have a larger gap. In fact, heavier atoms have more diffuse orbitals and weaker bonds, which reduce the gap. The trend is opposite to atomic mass.
Now let’s check the options:
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Option (a) says . This is wrong because it places germanium’s gap above silicon’s — the actual order is the reverse.
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Option (b) says . This is nonsense — it claims carbon has the smallest gap, which is completely false, and also gives germanium the largest, which is also false.
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Option (c) says . This matches the known trend exactly.
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Option (d) says all three are equal. This is clearly wrong — the materials have very different electrical properties (diamond is an insulator, silicon and germanium are semiconductors).
You can remember the trend as: higher up in Group 14 → larger band gap. Carbon (top) is an insulator, silicon and germanium (below) are semiconductors, and tin/lead (further down) are metals (zero gap). This is a classic periodic property.
The correct option is (c).
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