Modern Physics 6 Question 5

5. An $n-p-n$ transistor operates as a common emitter amplifier, with a power gain of $60 dB$. The input circuit resistance is 100 $\Omega$ and the output load resistance is $10 k \Omega$. The common emitter current gain $\beta$ is

(Main 2019, 10 April I)

(a) $10^{2}$

(b) $6 \times 10^{2}$

(c) $10^{4}$

(d) 60

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Solution:

  1. Given, $A _P=60 dB$ (in decibel)

Power gain in decibel can be given as

$$ \begin{aligned} & A _P=10 \log _{10} \frac{\text { Output power }}{\text { Input power }} \\ \Rightarrow & 60=10 \log _{10} \frac{P _{\text {out }}}{P _{\text {in }}} \Rightarrow \log _{10} \frac{P _{\text {out }}}{P _{\text {in }}}=6 \\ \Rightarrow & \quad \frac{P _{\text {out }}}{P _{\text {in }}}=10^{6}=A _P \end{aligned} $$

Also, given $R _{\text {out }}=10 k \Omega, R _{\text {in }}=100 \Omega$

$\therefore$ Power gain of a transistor is given by

$$ A _P=\beta^{2} \frac{R _{\text {out }}}{R _{\text {in }}} $$

where, $\beta$ is current gain.

$$ \begin{array}{ll} \Rightarrow & \beta^{2}=A _P \times \frac{R _{\text {in }}}{R _{\text {out }}}=10^{6} \times \frac{100}{10 \times 10^{3}} \\ \Rightarrow & \beta^{2}=10^{4} \text { or } \beta=10^{2} \end{array} $$



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