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प्रश्न
Suppose a pure Si crystal has 5 × 1028 atoms per m3. It is doped with 5 × 1022 atoms per m3 of Arsenic. Calculate majority and minority carrier concentration in the doped silicon.
(Given: ni = 1.5 × 1016 m−3)
संख्यात्मक
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उत्तर
Arsenic is a pentavalent impurity that produces an n-type semiconductor.
Majority carriers (electrons): n ≈ ND
Donor concentration (ND) = 5 × 1022 m−3
Since ND ≫ ni:
n ≈ ND = 5 × 1022 m−3
Mass action law:
np = `n_i^2`
p = `n_i^2/n`
= `((1.5 xx 10^16)^2)/(5 xx 10^22)`
= `(2.25 xx 10^32)/(5 xx 10^22)`
= 0.45 × 1010
= 4.5 × 109 m−3
∴ The majority carrier concentration electrons (n) is 5 × 1022 m−3, and the minority carrier concentration holes (p) is 4.5 × 109 m−3.
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