Microelectronics: Circuit Analysis and Design
Microelectronics: Circuit Analysis and Design
4th Edition
ISBN: 9780073380643
Author: Donald A. Neamen
Publisher: McGraw-Hill Companies, The
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Textbook Question
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Chapter 10, Problem 10.83P

A BJT amplifier with active load is shown in Figure P10.83. The circuit contains emitter resistors R E and a load resistor R L . (a) Derive theexpression for the output resistance looking into the collector of Q 2 .(b) Using the small-signal equivalent circuit, derive the equation for thesmallsigna1 voltage gain. Express the relationship in a form similar toEquation (10.94).

Chapter 10, Problem 10.83P, A BJT amplifier with active load is shown in Figure P10.83. The circuit contains emitter resistors

(a)

Expert Solution
Check Mark
To determine

To derive:An expression for the output resistance RO looking into the collector of transistor Q2

Answer to Problem 10.83P

  RO=ro2[1+gm2(RErπ2)]

Explanation of Solution

Given:

The given circuit is,

  Microelectronics: Circuit Analysis and Design, Chapter 10, Problem 10.83P , additional homework tip 1

Calculation:

The small-signal equivalent circuit of BJT amplifier is as shown,

  Microelectronics: Circuit Analysis and Design, Chapter 10, Problem 10.83P , additional homework tip 2

Apply KCL at base terminal of Q1

  Ix1=Vx1rπ1+gm1Vπ1+Vx1ro1R1(1)

  Vx1 input voltage of Q1

  ro1 output resistance of Q1

  R1 input resistance of Q1

  rπ1 input resistance of hybrid parameter

  gm1 trans-conductance of Q1

Hybrid parameters p,

  Vπ1 = Vx1

Substitute Vπ1 = Vx1 in eq1

  Ix1=Vx1rπ1+gm1Vx1+Vx1ro1R1

Now rearrange the equation for output resistance 1Ro1

  Ix1Vx1=1rπ1+gm1(1)+1ro1R1(2)

Expression for output resistance

  1Ro1=Ix1Vx1(3)

Substitute equation (3) in equation (2)

  1Ro1=1rπ1+gm1(1)+1ro1R1(4)

Now the small-signal equivalent circuit is modified for output resistance as shown,

  Microelectronics: Circuit Analysis and Design, Chapter 10, Problem 10.83P , additional homework tip 3

Apply KVL for input voltage at above circuit,

  Vx=Ixro2gm2ro2Vπ2+IxR'E(5)

Expression for hybrid parameter.

  Vπ2=IxR'E(6)

Put Vπ2=IxR'E in equation (5),

  Vx=Ixro2gm2ro2(IxRE')+IxR'E

Rearrange the equation for output resistance,

  VxIx=ro2gm2ro2(RE')+R'E(7)

  RO=ro2+gm2ro2RE'+R'ERO=ro2[1+gm2RE'+R'Ero2]RO=ro2[1+RE'(gm2+1ro2)](8)

Consider gm21ro2 for trans-conductance, rewrite equation (8)

  RO=ro2[1+gm2RE'](9)

  RE'=RErπ2(10)

Substitute the value of equation (10) in (9)

  RO=ro2[1+gm2(RErπ2)] is the derived expression for output resistance.

Conclusion:

  RO=ro2[1+gm2(RErπ2)]

(b)

Expert Solution
Check Mark
To determine

To find:An expression for small-signal voltage gain.

Answer to Problem 10.83P

  Av=(gmO)(roRLro2)

Explanation of Solution

Given:

The given circuit is,

  Microelectronics: Circuit Analysis and Design, Chapter 10, Problem 10.83P , additional homework tip 4

Calculation:

The small-signal equivalent circuit of BJT amplifier is as shown,

  Microelectronics: Circuit Analysis and Design, Chapter 10, Problem 10.83P , additional homework tip 5

Apply KCL at base terminal of Q1

  Ix1=Vx1rπ1+gm1Vπ1+Vx1ro1R1(1)

  Vx1 input voltage of Q1

  ro1 output resistance of Q1

  R1 input resistance of Q1

  rπ1 input resistance of hybrid parameter

  gm1 trans-conductance of Q1

Hybrid parameters p ,

  Vπ1 = Vx1

Substitute Vπ1 = Vx1 in equation (1)

  Ix1=Vx1rπ1+gm1Vx1+Vx1ro1R1

Now rearrange the equation for output resistance 1Ro1

  Ix1Vx1=1rπ1+gm1(1)+1ro1R1(2)

Expression for output resistance

  1Ro1=Ix1Vx1(3)

Substitute equation (3) in equation (2)

  1Ro1=1rπ1+gm1(1)+1ro1R1(4)

Now the small-signal equivalent circuit is modified for output resistance as shown, Microelectronics: Circuit Analysis and Design, Chapter 10, Problem 10.83P , additional homework tip 6

Apply KVL for input voltage at above circuit,

  Vx=Ixro2gm2ro2Vπ2+IxR'E(5)

Expression for hybrid parameter.

  Vπ2=IxR'E(6)

Put Vπ2=IxR'E in equation (5),

  Vx=Ixro2gm2ro2(IxRE')+IxR'E

Rearrange the equation for output resistance,

  VxIx=ro2gm2ro2(RE')+R'E(7)

  RO=ro2+gm2ro2RE'+R'ERO=ro2[1+gm2RE'+R'Ero2]RO=ro2[1+RE'(gm2+1ro2)](8)

Consider gm21ro2 for trans-conductance, rewrite equation (8)

  RO=ro2[1+gm2RE'](9)

  RE'=RErπ2(10)

Substitute the value of equation 10 in equation 9,

  RO=ro2[1+gm2(RErπ2)] derived expression for output resistance.

Now derive an expression for output voltage.

  VO=(gmOVπ1)(roRLro2)(11)

Input voltage will be,

  Vπ1=Vi(12)

Put Vπ1=V in equation 11,

  VO=(gmOVi)(roRLro2)VOVi=(gmO)(roRLro2)

It is known that ,

  Av=VOVi

The small-signal voltage gain derived expression is,

  Av=(gmO)(roRLro2)

Conclusion:

  Av=(gmO)(roRLro2)

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Chapter 10 Solutions

Microelectronics: Circuit Analysis and Design

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