Tradeoffs and Optimization in Analog Cmos Design

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Format: eBook
Pub. Date: 2008-11-01
Publisher(s): Wiley-Interscience
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Summary

Analog CMOS integrated circuits are in widespread use for communications, entertainment, multimedia, biomedical, and many other applications that interface with the physical world. Although analog CMOS design is greatly complicated by the design choices of drain current, channel width, and channel length present for every MOS device in a circuit, these design choices afford significant opportunities for optimizing circuit performance.This book addresses tradeoffs and optimization of device and circuit performance for selections of the drain current, inversion coefficient, and channel length, where channel width is implicitly considered. The inversion coefficient is used as a technology independent measure of MOS inversion that permits design freely in weak, moderate, and strong inversion.This book details the significant performance tradeoffs available in analog CMOS design and guides the designer towards optimum design by describing: An interpretation of MOS modeling for the analog designer, motivated by the EKV MOS model, using tabulated hand expressions and figures that give performance and tradeoffs for the design choices of drain current, inversion coefficient, and channel length; performance includes effective gate-source bias and drain-source saturation voltages, transconductance efficiency, transconductance distortion, normalized drain-source conductance, capacitances, gain and bandwidth measures, thermal and flicker noise, mismatch, and gate and drain leakage current Measured data that validates the inclusion of important small-geometry effects like velocity saturation, vertical-field mobility reduction, drain-induced barrier lowering, and inversion-level increases in gate-referred, flicker noise voltage In-depth treatment of moderate inversion, which offers low bias compliance voltages, high transconductance efficiency, and good immunity to velocity saturation effects for circuits designed in modern, low-voltage processes Fabricated design examples that include operational transconductance amplifiers optimized for various tradeoffs in DC and AC performance, and micropower, low-noise preamplifiers optimized for minimum thermal and flicker noise A design spreadsheet, available at the book web site, that facilitates rapid, optimum design of MOS devices and circuitsTradeoffs and Optimization in Analog CMOS Design is the first book dedicated to this important topic. It will help practicing analog circuit designers and advanced students of electrical engineering build design intuition, rapidly optimize circuit performance during initial design, and minimize trial-and-error circuit simulations.

Table of Contents

Foreword
Preface
Acknowledgments
List of Symbols and Abbreviations
Introduction
Importance of Tradeoffs and Optimization in Analog CMOS Design
Industry Designers and University Students as Readers
Organization and Overview of Book
Full or Selective Reading of Book
Example Technologies and Technology Extensions
Limitations of the Methods
Disclaimer
MOS Device Performance, Tradeoffs and Optimization for Analog CMOS Design
MOS Design from Weak through Strong Inversion
Introduction
MOS Design Complexity Compared to Bipolar Design
Bipolar Transistor Collector Current and Transconductance
MOS Drain Current and Transconductance
MOS Drain-Source Conductance
Analog CMOS Electronic Design Automation Tools and Design Methods
References
MOS Performance versus Drain Current, Inversion Coefficient, and Channel Length
Introduction
Advantages of Selecting Drain Current, Inversion Coefficient, and Channel Length in Analog CMOS Design
Process Parameters for Example Processes
Substrate Factor and Inversion Coefficient
Temperature Effects
Sizing Relationships
Drain Current and Bias Voltages
Small-Signal Parameters and Intrinsic Voltage Gain
Capacitances and Bandwidth
Noise
Mismatch
Leakage Current
References
Tradeoffs in MOS Performance, and Design of Differential Pairs and Current Mirrors
Introduction
Performance Trends
Performance Tradeoffs
Design of Differential Pairs and Current Mirrors Using the Analog CMOS Design, Tradeoffs and Optimization Spreadsheet
References
Circuit Design Examples Illustrating Optimization for Analog CMOS Design
Design of CMOS Operational Transconductance Amplifiers Optimized for DC, Balanced, and AC Performance
Introduction
Circuit Description
Circuit Analysis and Performance Optimization
Design Optimization and Resulting Performance for the Simple OTAs
Design Optimization and Resulting Performance for the Cascoded OTAs
Prediction Accuracy for Design Guidance and Optimization
References
Design of Micropower CMOS Preamplifiers Optimized for Low Thermal and Flicker Noise
Introduction
Using the Lateral Bipolar Transistor for Low-Flicker-Noise Applications
Measures of Preamplifier Noise Performance
Reported Micropower, Low-Noise CMOS Preamplifiers
MOS Noise versus the Bias Compliance Voltage
Extraction of MOS Flicker-Noise Parameters
Differential Input Preamplifier
Single-Ended Input Preamplifier
Prediction Accuracy for Design Guidance and Optimization
Summary of Low-Noise Design Methods and Resulting Challenges in Low-Voltage Processes
References
Extending Optimization Methods to Smaller-Geometry CMOS Processes and Future Technologies
Introduction
Using the Inversion Coefficient for CMOS Process Independence and for Extension to Smaller-Geometry Processes
Enhancing Optimization Methods by Including Gate Leakage Current Effects
Using an Inversion Coefficient Measure for Non-CMOS Technologies
References
Appendix: The Analog CMOS Design, Tradeoffs and Optimization Spreadsheet
Index
Table of Contents provided by Publisher. All Rights Reserved.

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