Semiconductor Electronics : Materials, Devices and Simple Circuits
- Which one of the following statement is FALSE ?
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Majority carriers in an n-type semiconductor are electrons.
Correct Option: B
Majority carriers in an n-type semiconductor are electrons.
- Pure Si at 500 K has equal number of electron (ne) and hole (nh) concentrations of 1.5 × 1016 m–3. Doping by indium increases nh to 4.5 × 1022 m–3. The doped semiconductor is of
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n12 = nenh
(1.5 × 1016 )2 = ne (4.5 × 1022 )
⇒ ne = 0.5 × 1010
or ne = 5 × 109
Given nh = 4.5 × 1022
⇒ nh >> ne
∴ Semiconductor is p-type and
ne = 5 × 109 m–3.Correct Option: D
n12 = nenh
(1.5 × 1016 )2 = ne (4.5 × 1022 )
⇒ ne = 0.5 × 1010
or ne = 5 × 109
Given nh = 4.5 × 1022
⇒ nh >> ne
∴ Semiconductor is p-type and
ne = 5 × 109 m–3.
- A zener diode, having breakdown voltage equal to 15 V, is used in a voltage regulator circuit shown in figure. The current through the diode is
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Voltage across zener diode is constant.
Current in 1kΩ resistor,(i)1kΩ = 15 volt = 15 mA 1kΩ
Current in 250Ω resistor,(i)1kΩ = (20 - 15)V = 5V A 250 Ω 250 Ω = 20 A = 20 mA 100
∴ (i)zener diode = (20 - 15) = 5 mACorrect Option: D
Voltage across zener diode is constant.
Current in 1kΩ resistor,(i)1kΩ = 15 volt = 15 mA 1kΩ
Current in 250Ω resistor,(i)1kΩ = (20 - 15)V = 5V A 250 Ω 250 Ω = 20 A = 20 mA 100
∴ (i)zener diode = (20 - 15) = 5 mA
- For an electronic valve, the plate current I and plate voltage V in the space charge limited region are related as
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According to Child’s Law,
Ia = KVa3/2
Thus, I ∝ V3/2Correct Option: A
According to Child’s Law,
Ia = KVa3/2
Thus, I ∝ V3/2
- Which one of the following bonds produces a solid that reflects light in the visible region and whose electrical conductivity decreases with temperature and has high melting point?
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For a metal, conductivity decreases with increase in temperature. Also, metal has high melting point.
Correct Option: A
For a metal, conductivity decreases with increase in temperature. Also, metal has high melting point.