How much is the forbidden gap (approximately) in the energy bands of germanium at room temperature? 
1. \(1.1~\text{eV}\)
2. \(0.1~\text{eV}\)
3. \(0.67~\text{eV}\)
4. \(6.7~\text{eV}\)

Subtopic:  Energy Band theory |
 60%
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In P-type semiconductor, the majority and minority charge carriers are respectively

(1) Protons and electrons

(2) Electrons and protons

(3) Electrons and holes

(4) Holes and electrons

Subtopic:  Types of Semiconductors |
 89%
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At zero Kelvin a piece of germanium

(1) Becomes semiconductor

(2) Becomes good conductor

(3) Becomes bad conductor

(4) Has maximum conductivity

Subtopic:  Types of Semiconductors |
 72%
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A semiconductor is cooled from T1K to T2K. Its resistance

(1) Will decrease

(3) Will increase

(3) Will first decrease and then increase

(4) Will not change

Subtopic:  Types of Semiconductors |
 76%
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In intrinsic semiconductor at room temperature, the number of electrons and holes are

(1) Equal

(2) Zero

(3) Unequal

(4) Infinite

Subtopic:  Types of Semiconductors |
 89%
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In a semiconductor, the separation between the conduction band and valence band is of the order of

(1) 100 eV

(2) 10 eV

(3) 1 eV

(4) 0 eV

Subtopic:  Energy Band theory |
 77%
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The intrinsic semiconductor becomes an insulator at

(1) 0°C

(2) -100°C 

(3)  300 K

(4) 0 K

Subtopic:  Types of Semiconductors |
 76%
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In a good conductor, the energy gap between the conduction band and the valence band is:
1. Infinite
2. Wide
3. Narrow
4. Zero

Subtopic:  Energy Band theory |
 77%
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The impurity atom added to germanium to make it an N-type semiconductor is 

(1) Arsenic

(2) Iridium

(3) Aluminium

(4) Iodine

Subtopic:  Types of Semiconductors |
 88%
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When N-type of semiconductor is heated

(1) Number of electrons increases while that of holes decreases

(2) Number of holes increases while that of electrons decreases

(3) Number of electrons and holes remains same

(4) Number of electrons and holes increases equally

Subtopic:  Types of Semiconductors |
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