Microelectronics: Circuit Analysis and Design
Microelectronics: Circuit Analysis and Design
4th Edition
ISBN: 9780073380643
Author: Donald A. Neamen
Publisher: McGraw-Hill Companies, The
bartleby

Concept explainers

bartleby

Videos

Question
Book Icon
Chapter 13, Problem 13.10P

a.

To determine

Currents Iref,I3,I4 and I5

a.

Expert Solution
Check Mark

Answer to Problem 13.10P

Currents Iref=75 μA, I3=13 μA,I4=45 μA,I5=45 μA

Explanation of Solution

Given:

Circuit is given as;

  Microelectronics: Circuit Analysis and Design, Chapter 13, Problem 13.10P , additional homework tip  1

  V+=3 V,V=3 V,R1=80 kΩ,RE=3.5 kΩ

Current for transistors Q1,Q2 and Q3 is IS=5×1015 A

For Q4,IS=3×1015 A

For Q5,IS=1015 A

Reference current is given by,

  Iref=V+VEB2VEB1VR1.....1

Base to emitter voltage for any transistor is given by,

  VEB=VTln(ISIC)

Therefore base to emitter voltage for transistor Q2 is , VEB2=VTln(I S2I C2).......2

Now, base to emitter voltage for transistor Q1 is , VEB1=VTln(I S1I C1).......3

Now putting the value of equation 2 and equation 3 in equation 1.

  Iref=V+VTln( I S2 I C2 )VTln( I S1 I C1 )VR1. …..4

Using property of log equation 4 can be written as,

  Iref=V+VTln( I S2 I C2 × I C1 I S1 )VR1.

From the given data IC1=IC2 and IS1=IS2

Therefore, Iref=V+VTln( I S1 I C1 × I C1 I S1 )VR1.=V+VTln(1)VR1.=V+VR1.

Now putting the value of V+,V and R1

  Iref=3( 3)80× 103=75×106 A=75 μA

Therefore reference current is equal to 75 μA

Now, I3RE=VTln(I refI3)

Now putting all values,

  I3×3.5×103=26×103ln( 75× 10 6 I 3 )1.346×105I3=ln( 75× 10 6 I 3 )( 75× 10 6 I 3 )=e1.346× 105I3I3=13×106=13 μA

Base to emitter voltage for transistor Q4 is , VEB4=VTln(I S4I4).......4

As VEB4=VEB2

Therefore from equation 2 and equation 4.

  VTln( I S4 I 4 )=VTln( I S2 I C2 )I S4I4=I S2I C2As IC2=IrefI S4I4=I S2I ref

Now putting all values,

  3× 10 15I4=75× 10 65× 10 15I4=45×106 A=45 μA

Base to emitter voltage for transistor Q5 is , VEB5=VTln(I S5I5).......5

As VEB5=VEB2

Therefore from equation 2 and equation 4.

  VTln( I S5 I 5 )=VTln( I S2 I C2 )I S5I5=I S2I C2As IC2=IrefI S5I5=I S2I ref

Now putting all values,

   10 15I5=75× 10 65× 10 15I4=15×106 A=15 μA

b.

To determine

Currents I4 and I5

b.

Expert Solution
Check Mark

Answer to Problem 13.10P

Currents I4=120 μA,I5=30 μA

Explanation of Solution

Given:

Circuit is given as;

  Microelectronics: Circuit Analysis and Design, Chapter 13, Problem 13.10P , additional homework tip  2

  V+=3 V,V=3 V,R1=80 kΩ,RE=3.5 kΩ

Current for transistors Q1,Q2 and Q3 is IS=5×1015 A

For Q4,IS=8×1015 A

For Q5,IS=2×1015 A

Base to emitter voltage for transistor Q4 is , VEB4=VTln(I S4I4).......4

As VEB4=VEB2

Therefore from equation 2 and equation 4.

  VTln( I S4 I 4 )=VTln( I S2 I C2 )I S4I4=I S2I C2As IC2=IrefI S4I4=I S2I ref

Now putting all values,

  8× 10 15I4=75× 10 65× 10 15I4=120×106 A=120 μA

Base to emitter voltage for transistor Q5 is , VEB5=VTln(I S5I5).......5

As VEB5=VEB2

Therefore from equation 2 and equation 4.

  VTln( I S5 I 5 )=VTln( I S2 I C2 )I S5I5=I S2I C2As IC2=IrefI S5I5=I S2I ref

Now putting all values,

  2× 10 15I5=75× 10 65× 10 15I4=30×106 A=30 μA

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Students have asked these similar questions
Q2. Figure Q2 shows a block diagram with an input of C(s) and an output R(s). a) C(s) K₁ R(s) K2 1 + 5s 1+2s Figure Q2. Block diagram of control system. Simply the block diagram to get the transfer function of the system C(s)/R(s). b) What is the order of the system? c) What is the gain of the system? d) Determine the values of K₁ and K₂ to obtain a natural frequency w of 0.5 rad/s and damping ratio of 0.4. e) What is the rise time and overshoot of the system with a unit step input?
Q4. a) A purely derivative controller (i.e. with a zero at the origin only) is defined by an improper transfer function. Considering its asymptotic behaviour, explain why a purely derivative controller is difficult to implement in practice. Relate your explanation to the potential limitations on system performance. b) Discuss the potential issues faced by a control system with a large cut-off frequency. Relate your discussion to the implications on system performance. c) The transfer function of a lag compensator is given by 2 KPID(S) = 2.2++0.2s S By using the asymptotic approximation technique: (i) Obtain the standard form and corner frequency for each individual component of KPID(S). (ii) Clearly describe the asymptotic behaviour of each individual component of KPID(S).
Module Code: EN2058 Q1. a) List the advantages and disadvantages of a closed loop system compared to an open loop system. b) c) What is the procedure for designing a control system for a bread toaster? An RC circuit is given in Figure Q1. vi(t) and v(t) are the input and output voltages. (i) Derive the transfer function of the circuit. (ii) With a unit step change vi(t) applied to the circuit, derive and sketch the time response of the circuit. R1 R2 v₁(t) R3 C1 vo(t) R₁ =R2 = 10 k R3 = 100 kn C₁ = 100 μF Figure Q1. RC circuit. (iii) Assuming zero initial conditions, obtain the impulse and ramp responses of the circuit from the step response derived in (ii). Sketching is not needed.

Chapter 13 Solutions

Microelectronics: Circuit Analysis and Design

Ch. 13 - Prob. 13.11EPCh. 13 - Prob. 13.10TYUCh. 13 - Prob. 13.12TYUCh. 13 - Prob. 13.12EPCh. 13 - Prob. 13.13EPCh. 13 - Prob. 13.15EPCh. 13 - Prob. 13.15TYUCh. 13 - Consider the LF155 BiFET input stage in Figure...Ch. 13 - Describe the principal stages of a generalpurpose...Ch. 13 - Prob. 2RQCh. 13 - Prob. 3RQCh. 13 - Describe the operation and characteristics of a...Ch. 13 - Describe the configuration and operation of the...Ch. 13 - What is the purpose of the resistorin the active...Ch. 13 - Prob. 7RQCh. 13 - Prob. 8RQCh. 13 - Describe the frequency compensation technique in...Ch. 13 - Sketch and describe the general characteristics of...Ch. 13 - Prob. 11RQCh. 13 - Sketch and describe the principal advantage of a...Ch. 13 - Prob. 13RQCh. 13 - What are the principal factors limiting the...Ch. 13 - Consider the simple MOS opamp circuit shown in...Ch. 13 - Prob. 13.2PCh. 13 - Prob. 13.5PCh. 13 - Consider the input stage of the 741 opamp in...Ch. 13 - Prob. 13.7PCh. 13 - Prob. 13.8PCh. 13 - Prob. 13.10PCh. 13 - The minimum recommended supply voltages for the...Ch. 13 - Prob. 13.12PCh. 13 - Consider the 741 opamp in Figure 13.3, biased with...Ch. 13 - Prob. 13.14PCh. 13 - Consider the output stage of the 741 opamp shown...Ch. 13 - Prob. 13.16PCh. 13 - Prob. 13.19PCh. 13 - Prob. 13.20PCh. 13 - Prob. 13.21PCh. 13 - Prob. 13.22PCh. 13 - Prob. 13.23PCh. 13 - Prob. 13.24PCh. 13 - (a) Determine the differential input resistance of...Ch. 13 - An opamp that is internally compensated by Miller...Ch. 13 - The CMOS opamp in Figure 13.14 is biased at V+=5V...Ch. 13 - Prob. 13.34PCh. 13 - Consider the MC14573 opamp in Figure 13.14, with...Ch. 13 - Prob. 13.36PCh. 13 - Prob. 13.37PCh. 13 - Prob. 13.39PCh. 13 - Prob. 13.41PCh. 13 - In the bias portion of the CA1340 opamp in Figure...Ch. 13 - Prob. 13.57PCh. 13 - In the LF155 BiFET opamp in Figure 13.25, the...
Knowledge Booster
Background pattern image
Electrical Engineering
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, electrical-engineering and related others by exploring similar questions and additional content below.
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
Introductory Circuit Analysis (13th Edition)
Electrical Engineering
ISBN:9780133923605
Author:Robert L. Boylestad
Publisher:PEARSON
Text book image
Delmar's Standard Textbook Of Electricity
Electrical Engineering
ISBN:9781337900348
Author:Stephen L. Herman
Publisher:Cengage Learning
Text book image
Programmable Logic Controllers
Electrical Engineering
ISBN:9780073373843
Author:Frank D. Petruzella
Publisher:McGraw-Hill Education
Text book image
Fundamentals of Electric Circuits
Electrical Engineering
ISBN:9780078028229
Author:Charles K Alexander, Matthew Sadiku
Publisher:McGraw-Hill Education
Text book image
Electric Circuits. (11th Edition)
Electrical Engineering
ISBN:9780134746968
Author:James W. Nilsson, Susan Riedel
Publisher:PEARSON
Text book image
Engineering Electromagnetics
Electrical Engineering
ISBN:9780078028151
Author:Hayt, William H. (william Hart), Jr, BUCK, John A.
Publisher:Mcgraw-hill Education,
Differential Amplifiers Made Easy; Author: The AudioPhool;https://www.youtube.com/watch?v=Mcxpn2HMgtU;License: Standard Youtube License