The collector supply in a common emitter amplifier is 8 V and the voltage drop across the load of 800 `Omega` is 0.4 V. If the current gain for common base be `alpha`=0.96 , then the base currentA. `15 muA`B. `21 muA`C. `25 muA`D. `30 muA`

The collector supply in a common emitter amplifier is 8 V and the volt

1.	The collector supply in a common emitter amplifier is 8 V and the voltage drop across the load of 800 `Omega` is 0.4 V. If the current gain for common base be `alpha`=0.96 , then the base currentA. `15 muA`B. `21 muA`C. `25 muA`D. `30 muA`
Answer» Correct Answer - B `V_("cc")=8V, R_(l)=800 Omega, V_(0)=0.4 V, alpha=0.96, I_(b)=? ` `V_(0)=I_(c)R_(l)` `therefore I_(c)=(V_(0))/(R_(l))=(0.4)/(800)=5xx10^(-4)A` `I_(c)=500 muA` Now `alpha=(I_(c))/(I_(e))=(I_(c))/(I_(c)+I_(b))` `therefore I_(c)=alphaI_(c)+ alpha I_(b)` `I_(b)=((1-alpha)/(alpha))I_(c)` `=((1-0.96)/(0.96))500` `=21 muA`

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The collector supply in a common emitter amplifier is 8 V and the voltage drop across the load of 800 `Omega` is 0.4 V. If the current gain for common base be `alpha`=0.96 , then the base currentA. `15 muA`B. `21 muA`C. `25 muA`D. `30 muA`

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