
Tradeoffs and Optimization in Analog Cmos Design
by David Binkley (University of North Carolina, USA)Rent Textbook
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Summary
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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