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 5, Problem 5.58P

(a) Determine the Q-point values for the circuit in Figure P5.58. Assume β = 50 . (b) Repeat part (a) if all resistor values are reduced by a factor of 3. (c) Sketch the load lines and plot the Q-point values for parts (a) and (b).

Chapter 5, Problem 5.58P, (a) Determine the Q-point values for the circuit in Figure P5.58. Assume =50 . (b) Repeat part (a)
Figure P5.58

(a)

Expert Solution
Check Mark
To determine

The Q -point of the circuit.

Answer to Problem 5.58P

  (ICQ,VECQ)=(0.0888mA,3.55V)

Explanation of Solution

Given Information:

The given circuit is shown below.

  Microelectronics: Circuit Analysis and Design, Chapter 5, Problem 5.58P , additional homework tip  1

  β=50

Calculation:

Converting the biasing circuit into its Thevenin equivalent:

  Microelectronics: Circuit Analysis and Design, Chapter 5, Problem 5.58P , additional homework tip  2

The value of VTH,RTH is determined as follows:

  VTH=R1V+R2V+R1+R2VTH=36×( 5)+68×568+36VTH=1.54VRTH=R1R2R1+R2RTH=36×6836+68RTH=23.5

Applying Kirchhoff’s voltage law in emitter-base loop:

  V+=(1+β)IBQRE+VEB(on)+IBQRTH+VTH5=51×30×IBQ+0.7+IBQ(23.5)+1.54IBQ=2.761553.5IBQ=1.78μA

The value of collector and emitter current is:

  ICQ=βIBQICQ=50×0.00178ICQ=0.0888mAIEQ=(1+β)IBQIEQ=51×0.00178IEQ=0.0906mA

Applying Kirchhoff’s voltage law in collector-emitter loop:

  V+=IEQRE+VECQ+ICQRC+V5=(0.0906)(30)+VECQ+(0.0888)(42)5VECQ=102.7183.7296VECQ=3.55V

Hence, the Q -point is:

  (ICQ,VECQ)=(0.0888mA,3.55V)

(b)

Expert Solution
Check Mark
To determine

The Q -point of the circuit if resistor values are reduced by a given factor.

Answer to Problem 5.58P

  (ICQ,VECQ)=(0.266mA,3.56V)

Explanation of Solution

Given Information:

  Microelectronics: Circuit Analysis and Design, Chapter 5, Problem 5.58P , additional homework tip  3

  β=50

Calculation:

The new amplifier circuit is:

  R1=683R1=22.7R2=363R2=12RC=423RC=14RE=303RE=10

  Microelectronics: Circuit Analysis and Design, Chapter 5, Problem 5.58P , additional homework tip  4

Converting the biasing circuit into its Thevenin equivalent:

  Microelectronics: Circuit Analysis and Design, Chapter 5, Problem 5.58P , additional homework tip  5

The value of VTH,RTH is determined as follows:

  VTH=R1V+R2V+R1+R2VTH=12×( 5)+22.7×522.7+12VTH=1.54VRTH=R1||R2RTH=12×22.712+22.7RTH=7.85

Applying Kirchhoff’s voltage law in emitter-base loop:

Applying Kirchhoff’s voltage law in emitter-base loop:

  V+=(1+β)IBQRE+VEB(on)+IBQRTH+VTH5=51×10×IBQ+0.7+IBQ(7.85)+1.54IBQ=2.76517.85IBQ=5.33μA

The value of collector and emitter current is:

  ICQ=βIBQICQ=50×0.00533ICQ=0.266mAIEQ=(1+β)IBQIEQ=51×0.00533IEQ=0.272mA

Applying Kirchhoff’s voltage law in collector-emitter loop:

  V+=IEQRE+VECQ+ICQRC+V5=IEQRE+VECQ+ICQRC510=ICQRC+VECQ+IEQRE10=(0.266)(14)+VCEQ+(0.272)(10)VECQ=3.56V

Hence, the Q-point is:

  (ICQ,VECQ)=(0.266mA,3.56V)

(c)

Expert Solution
Check Mark
To determine

To plot: A DC load line and labelQ -point.

Answer to Problem 5.58P

A dc load line for part (a) along with Q -point is shown in Figure 1.

A dc load line for part (b) along with Q -point is shown in Figure 2.

Explanation of Solution

Given Information:

The given circuit is shown below.

  Microelectronics: Circuit Analysis and Design, Chapter 5, Problem 5.58P , additional homework tip  6

  β=50

Calculation:

a).

Converting the biasing circuit into its Thevenin equivalent:

  Microelectronics: Circuit Analysis and Design, Chapter 5, Problem 5.58P , additional homework tip  7

Applying Kirchhoff’s voltage law in collector-emitter loop:

The load line equation is:

  V+=IERE+VEC+ICRC+V5=ICRC+VEC+IERE5(ICIE)VEC=10(RC+RE)IC

It is equation of straight line with negative slope.

  IC=(1 R C + R E )VEC+10RC+REy=mx+C

For IC=0 ,

  VEC=10V

For VEC=0 ,

  IC=10RC+REIC=1042+30IC=138.8μA

The Q-point value is:

  (ICQ,VECQ)=(88.8μA,3.6V)

The figure of DC load line is:

  Microelectronics: Circuit Analysis and Design, Chapter 5, Problem 5.58P , additional homework tip  8

Figure 1

1unit along the voltage axis = 1 V

1unit along the current axis = 20 µA

(b)

Converting the biasing circuit into its Thevenin equivalent:

  Microelectronics: Circuit Analysis and Design, Chapter 5, Problem 5.58P , additional homework tip  9

Applying Kirchhoff’s voltage law in collector-emitter loop:

The load line equation is:

  V+=IERE+VEC+ICRC+V5=ICRC+VEC+IERE5(ICIE)VEC=10(RC+RE)IC

It is equation of straight line with negative slope.

  IC=(1 R C + R E )VEC+10RC+REy=mx+C

For IC=0 ,

  VEC=10V

For VEC=0 ,

  IC=10RC+REIC=1014+10IC=416.7μA

The Q-point value is:

  (ICQ,VECQ)=(266μA,3.6V)

The figure of DC load line is:

  Microelectronics: Circuit Analysis and Design, Chapter 5, Problem 5.58P , additional homework tip  10

1unit along the voltage axis = 1 V

1unit along the current axis = 50 µA

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Chapter 5 Solutions

Microelectronics: Circuit Analysis and Design

Ch. 5 - (a) Verify the results of Example 5.3 with a...Ch. 5 - Consider the pnp circuit in Figure 5.22(a). 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The...Ch. 5 - Consider the circuit shown in Figure 5.58. The...Ch. 5 - In the circuit shown in Figure 5.60, the...Ch. 5 - The parameters of the circuit shown in Figure...Ch. 5 - For Figure 5.59, the circuit parameters are...Ch. 5 - In the circuit shown in Figure 5.61, determine new...Ch. 5 - For the circuit shown in Figure 5.63, the circuit...Ch. 5 - (a) Verily the cascode circuit design in Example...Ch. 5 - Prob. 1RQCh. 5 - Prob. 2RQCh. 5 - Prob. 3RQCh. 5 - Define commonbase current gain and commonemitter...Ch. 5 - Discuss the difference between the ac and dc...Ch. 5 - State the relationships between collector,...Ch. 5 - Define Early voltage and collector output...Ch. 5 - Describe a simple commonemitter circuit with an...Ch. 5 - Prob. 9RQCh. 5 - Prob. 10RQCh. 5 - Prob. 11RQCh. 5 - Describe a bipolar transistor NOR logic circuit.Ch. 5 - Describe how a transistor can be used to amplify a...Ch. 5 - Discuss the advantages of using resistor voltage...Ch. 5 - Prob. 15RQCh. 5 - Prob. 16RQCh. 5 - (a) In a bipolar transistor biased in the...Ch. 5 - (a) A bipolar transistor is biased in the...Ch. 5 - (a) The range of ( for a particular type of...Ch. 5 - (a) A bipolar transistor is biased in the...Ch. 5 - Prob. 5.5PCh. 5 - An npn transistor with =80 is connected in a...Ch. 5 - Prob. 5.7PCh. 5 - A pnp transistor with =60 is connected in a...Ch. 5 - (a) The pnp transistor shown in Figure P5.8 has a...Ch. 5 - An npn transistor has a reverse-saturation current...Ch. 5 - Two pnp transistors, fabricated with the same...Ch. 5 - The collector currents in two transistors, A and...Ch. 5 - Prob. 5.13PCh. 5 - Prob. 5.14PCh. 5 - In a particular circuit application, the minimum...Ch. 5 - A particular transistor circuit design requires a...Ch. 5 - For all the transistors in Figure P5.17, =75 . The...Ch. 5 - The emitter resistor values in the circuits show...Ch. 5 - Consider the two circuits in Figure P5.19. The...Ch. 5 - The current gain for each transistor in the...Ch. 5 - Consider the circuits in Figure P5.21. For each...Ch. 5 - (a) The circuit and transistor parameters for the...Ch. 5 - In the circuits shown in Figure P5.23, the values...Ch. 5 - (a) For the circuit in Figure P5.24, determine VB...Ch. 5 - (a) The bias voltages in the circuit shown in...Ch. 5 - The transistor shown in Figure P5.26 has =120 ....Ch. 5 - The transistor in the circuit shown in Figure...Ch. 5 - In the circuit in Figure P5.27, the constant...Ch. 5 - For the circuit shown in Figure P5.29, if =200 for...Ch. 5 - The circuit shown in Figure P5.30 is to be...Ch. 5 - (a) The bias voltage in the circuit in Figure P5.3...Ch. 5 - The current gain of the transistor in the circuit...Ch. 5 - (a) The current gain of the transistor in Figure...Ch. 5 - (a) The transistor shown in Figure P5.34 has =100...Ch. 5 - Assume =120 for the transistor in the circuit...Ch. 5 - For the circuit shown in Figure P5.27, calculate...Ch. 5 - Consider the commonbase circuit shown in Figure...Ch. 5 - (a) For the transistor in Figure P5.38, =80 ....Ch. 5 - Let =25 for the transistor in the circuit shown in...Ch. 5 - (a) The circuit shown in Figure P5.40 is to be...Ch. 5 - The circuit shown in Figure P5.41 is sometimes...Ch. 5 - The transistor in Figure P5.42 has =120 . (a)...Ch. 5 - The commonemitter current gain of the transistor...Ch. 5 - For the circuit shown in Figure P5.44, plot the...Ch. 5 - The transistor in the circuit shown in Figure...Ch. 5 - Consider the circuit in Figure P5.46. For the...Ch. 5 - The current gain for the transistor in the circuit...Ch. 5 - Consider the amplifier circuit shown in Figure...Ch. 5 - For the transistor in the circuit shown in Figure...Ch. 5 - Reconsider Figure P5.49. The transistor current...Ch. 5 - The current gain of the transistor shown in the...Ch. 5 - For the circuit shown in Figure P5.52, let =125 ....Ch. 5 - Consider the circuit shown in Figure P5.53. (a)...Ch. 5 - (a) Redesign the circuit shown in Figure P5.49...Ch. 5 - Prob. 5.55PCh. 5 - Consider the circuit shown in Figure P5.56. (a)...Ch. 5 - (a) Determine the Q-point values for the circuit...Ch. 5 - (a) Determine the Q-point values for the circuit...Ch. 5 - (a) For the circuit shown in Figure P5.59, design...Ch. 5 - Design a bias-stable circuit in the form of Figure...Ch. 5 - Using the circuit in Figure P5.61, design a...Ch. 5 - For the circuit shown in Figure P5.61, the bias...Ch. 5 - (a) A bias-stable circuit with the configuration...Ch. 5 - (a) For the circuit shown in Figure P5.64, assume...Ch. 5 - The dc load line and Q-point of the circuit in...Ch. 5 - The range of ß for the transistor in the circuit...Ch. 5 - The nominal Q-point of the circuit in Figure P5.67...Ch. 5 - (a) For the circuit in Figure P5.67, the value of...Ch. 5 - For the circuit in Figure P5.69, let =100 and...Ch. 5 - Prob. 5.70PCh. 5 - Design the circuit in Figure P5.70 to be bias...Ch. 5 - Consider the circuit shown in Figure P5.72. (a)...Ch. 5 - For the circuit in Figure P5.73, let =100 . (a)...Ch. 5 - Prob. D5.74PCh. 5 - (a) Design a fourresistor bias network with the...Ch. 5 - (a) Design a four-resistor bias network with the...Ch. 5 - (a) A fourresistor bias network is to be designed...Ch. 5 - (a) Design a fourresistor bias network with the...Ch. 5 - For each transistor in the circuit in Figure...Ch. 5 - The parameters for each transistor in the circuit...Ch. 5 - The bias voltage in the circuit shown in Figure...Ch. 5 - Consider the circuit shown in Figure P5.82. The...Ch. 5 - (a) For the transistors in the circuit shown in...Ch. 5 - Using a computer simulation, plot VCE versus V1...Ch. 5 - Using a computer simulation, verify the results of...Ch. 5 - Using a computer simulation, verify the results of...Ch. 5 - Consider a commonemitter circuit with the...Ch. 5 - The emitterfollower circuit shown in Figure P5.89...Ch. 5 - The bias voltages for the circuit in Figure...Ch. 5 - The multitransistor circuit in Figure 5.61 is to...
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