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Available courses

To train the students about devices

Semester – 2

Paper Code: MECE-201

Paper Name: ANALOG VLSI DESIGN

Course Objectives:

1. To understand the construction, operation and mathematical models of MOSFETs

2. To analyze and design single stage and multistage amplifiers at low frequencies.

3. To study and analyze different current mirrors used to bias IC amplifiers.

4. To understand the frequency response of amplifier designed in integrated circuits.

5. To understand the principles of operation of Operational Amplifier.

6. To understand the principles of operation of Data Converter

Course Outcomes:

At the end of the course student will be able -

1. Acquire knowledge of device physics related to MOSFET.

2. Acquire knowledge of amplifier design with the use of proper biasing techniques.

3. Identify appropriate circuit topology for given gain, input impedance, output impedance and bandwidth requirements.

4. Design single and multi-stage amplifiers for desired gain, bandwidth and terminal impedance specifications.

5. Acquire the knowledge of different op-amp topologies and to design op-amps for the given specifications

6. Acquire the knowledge of different Data Converter technique and architecture.

Text Books

B. Razavi, Design of Analog CMOS Integrated Circuits, McGraw Hill, 2011.

R. Jacob Baker, “CMOS Circuit Design, Layout, and Simulation”, 3rd Edition, Wiley, 2010.

References

1. P. R. Gray & R. G. Meyer, Analysis and Design of Analog Integrated Circuits, 5/e, John Wiley, 2012.

2. P.E.Allen & D.R. Holberg, “CMOS Analog Circuit Design”, 3rd Edition, Oxford University Press, 2011

3. K.Radhakrishna Rao," Electronics for Analog Signal Processing-I", NPTEL, Courseware, 2005.

Course code: ECC353

Course Name: VLSI Design

Course objective:

1. To provide the basics of digital VLSI design flow.

2. To provide the basics of different CMOS design techniques.

3. To understand the power and delay optimization techniques.

Course Outcomes

At the end of this course students will demonstrate the ability to

1. Understand the models of MOS transistors and its use in circuit simulations.

2. Illustrate the use of various delay models and optimize the CMOS circuit delay.

3. Understand the effects of interconnects on the circuit performance

4. Design and analyze various CMOS combinational and sequential circuits, data path and memory subsystems

Textbook:

1. N.H.E. Weste and D.M. Harris, CMOS VLSI design: A Circuits and Systems Perspective, 4th Edition, Pearson Education India, 2011.

Reference Books

1. C. Mead and L. Conway, Introduction to VLSI Systems, Addison Wesley,1979.

2. S. M. Kang and Y. Leblebici, CMOS Digital Integrated Circuits : Analysis and Design, Third Edition, MH, 2002

3. J. M. Rabaey, A. P. Chandrakasan and B. Nikolic, Digital Integrated Circuits : A Design Perspective, Second Edition, PHI /Pearson, 2003.

4. J. P. Uyemura, CMOS Logic Circuit Design, Springer; 2001,.

5. J. P. Uyemura, Introduction to VLSI Circuits and System, Wiley, 2002.