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Transistor: Working

The diagram s...

Question

The diagram shows the biasing of an n-p-n transistor in common emitter configuration used in an amplifier. The design of the transistor is such that $98 %$ of the charge carriers from emitter reach the collector. If base current changes from $50 μ A$ to $100 μ A$ , then the corresponding change in the voltage across the load resistance $R_{L}$ will be

0.25 V

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0.25 V

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24.5 V

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49.0 V

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Solution

The correct option is C $24.5 V$

From the given data
$I_{C} = 0.98 I_{E}$
$Δ I_{B} = 50 \times 10^{- 6} A$

voltage across the $R_{l} = R_{L} \times Δ I_{C}$
where, $β = \frac{Δ I_{C}}{Δ I_{B}} Δ I_{C} = β \times I_{B}$
here, $β = \frac{I_{C}}{I_{B}}$

For CE-configuration,
$I_{E} = 0.98 I_{E}$
$I_{E} = I_{B} + I_{C}$
so, $I_{B} = 0.02 I_{E}$

so $β = \frac{0.987 I_{E}}{0.02 I_{C}} = 49$
form eq.(1)
$Δ I_{C} = 49 \times 50 \times 10^{- 6}$

So the voltage across $R_{L} = 10 \times 10^{3} \times 49 \times 50 \times 10^{- 6} \Rightarrow R_{L} = 24.5 V$

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