Modern Physics 6 Question 8

8. A common emitter amplifier circuit, built using an $n-p-n$ transistor, is shown in the figure. Its DC current gain is 250 , $R _C=1 k \Omega$ and $V _{C C}=10 V$. What is the minimum base current for $V _{C E}$ to reach saturation?

(Main 2019, 8 April II)

(a) $40 \mu A$

(b) $10 \mu A$

(c) $100 \mu A$

(d) $7 \mu A$

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Solution:

  1. For a common emitter $n-p-n$ transistor, DC current gain is

$$ \beta _{DC}=\frac{I _C}{I _B} $$

At saturation state, $V _{C E}$ becomes zero.

$$ \begin{aligned} \therefore \quad & V _{C C}-I _C R _C=0 \\ & I _C \approx \frac{V _{C C}}{R _C}=\frac{10}{1000}=10^{-2} A \end{aligned} $$

Hence, saturation base current,

$$ I _B=\frac{I _C}{\beta _{DC}}=\frac{10^{-2}}{250}=40 \mu A $$



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