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Answer in Detail · Q12

Q.Distinguish between intrinsic semiconductors and extrinsic semiconductors.

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An INTRINSIC semiconductor is a PURE semiconductor -- pure silicon or pure germanium, with no impurity deliberately added. At room temperature, thermal agitation breaks a small number of covalent bonds, creating a free electron and a hole together for every bond broken, so an intrinsic semiconductor always has EQUAL electron and hole densities, ne=nh=nin_e=n_h=n_i. Because so few bonds break this way (a tiny fraction of a crystal's roughly 102210^{22} atoms per cm3cm^3 actually contribute a carrier), its conductivity is quite low, and this conductivity cannot easily be adjusted -- it is essentially fixed by the material and the temperature alone.

An EXTRINSIC semiconductor is a DOPED semiconductor -- an intrinsic semiconductor into which a small, carefully chosen amount of impurity has been deliberately added to boost and control its conductivity. Doping with a pentavalent impurity (phosphorus, arsenic, antimony) gives an N-TYPE semiconductor, where the dopant donates a nearly-free extra electron to each doped site, so ne≫nhn_e\gg n_h and electrons are the majority carrier. Doping with a trivalent impurity (boron, aluminium, indium) gives a P-TYPE semiconductor instead, where each dopant atom leaves an incomplete bond -- a hole -- so nh≫nen_h\gg n_e and holes are the majority carrier. In both cases, the density of the majority carrier is set almost entirely by the doping level (and can be precisely controlled by how much impurity is added), which is why extrinsic semiconductors are far better, and far more controllable, conductors than intrinsic ones. Extrinsic semiconductors are, in this sense, always electrically neutral overall despite this large excess of one carrier type, since every donated electron or accepted hole is balanced by a correspondingly charged, fixed impurity ion.

In short: intrinsic = pure, equal carriers, modest and fixed conductivity; extrinsic = doped, one carrier type vastly dominant, and conductivity that can be engineered by choosing the doping level. [!ANSWER] Intrinsic = pure, ne=nhn_e=n_h, low/uncontrolled conductivity. Extrinsic = doped, ne≫nhn_e\gg n_h (n-type) or nh≫nen_h\gg n_e (p-type), high/controllable conductivity.

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