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Integrated circuits for near-infrared biomedical signal acquisition.

Wong, Kak Yeung Alex. / Thesis submitted in: November 2007. / Thesis (M.Phil.)--Chinese University of Hong Kong, 2008. / Includes bibliographical references (leaves 86-89). / Abstracts in English and Chinese. / Acknowledgement --- p.i / Abstract --- p.iii / 摘要 --- p.v / Table of contents --- p.vi / List of tables --- p.ix / List of Figures --- p.x / Chapter Chapter1 --- Introduction --- p.1 / Chapter 1.1 --- Background --- p.1 / Chapter 1.2 --- Motivation --- p.1 / Chapter 1.3 --- Summary of Contributions and Thesis Outline --- p.4 / Chapter Chapter 2 --- System Design and Architecture --- p.6 / Chapter 2.1 --- Architectural Consideration --- p.6 / Chapter 2.1.1 --- Previous work --- p.6 / Chapter 2.1.2 --- Proposed work --- p.10 / Chapter A) --- Transimpedance amplifier with off-chip component --- p.10 / Chapter B) --- Dual-loop transimpedance amplifier --- p.12 / Chapter 2.2 --- Design consideration for ultra low cutoff frequency filter --- p.13 / Chapter 2.2.1 --- Previous work on low cutoff frequency filter --- p.14 / Chapter A) --- GM-C with current division and sub-threshold operation --- p.14 / Chapter B) --- Capacitance Multiplier --- p.15 / Chapter C) --- Switched-opamp switched-capacitor (SO-SC) filter --- p.16 / Chapter 2.2.2 --- Proposed work for the ultra low cutoff frequency filter --- p.17 / Current steering lowpass filter --- p.17 / Chapter 2.1 --- Summary --- p.18 / Chapter Chapter 3 --- Transimpedance Amplifier Design --- p.21 / Chapter 3.1 --- Transimpedance amplifiEr with off-chip component --- p.21 / Chapter 3.1.1 --- Transimpedance amplifier with dc photocurrent rejection --- p.21 / Chapter 3.1.2 --- Proposed solution - Transimpedance amplifier with sample-and-hold in feedback --- p.23 / Chapter A) --- Operating principle --- p.23 / Chapter B) --- Simulation results --- p.25 / Chapter 3.2 --- Dual-loop transimpedance amplifier with DC photocurrent rejection --- p.27 / Chapter 3.2.1 --- Evolution from basic to proposed work --- p.27 / Chapter 3.2.2 --- Operating principle --- p.31 / Chapter 3.2.3 --- Development of the analytic model --- p.32 / Chapter 3.2.4 --- Derivation of frequency response --- p.37 / Chapter 3.2.5 --- Noise derivation --- p.40 / Total input referred noise --- p.43 / Chapter 3.3 --- Implementation and experimental results --- p.45 / Chapter 3.3.1 --- Off-chip capacitor TIA --- p.45 / Measurement results --- p.46 / Chapter 3.3.2 --- Dual-loop TIA --- p.49 / Measurement results --- p.51 / Chapter 3.4 --- Summary and comparison --- p.62 / Chapter Chapter 4 --- Ultra-Low Cutoff Frequency Filter Design --- p.65 / Chapter 4.1 --- Current-steering lowpass filter --- p.65 / Chapter 4.2 --- "Implementation, experimental and measurement results" --- p.67 / Chapter 4.2.1 --- Measurement results for CS-LPF --- p.68 / Chapter 4.2.2 --- Measurement results for overall system --- p.75 / Chapter 4.3 --- Summary --- p.82 / Chapter Chapter 5 --- Conclusions and Future Work --- p.84 / Chapter 5.1 --- Conclusions --- p.84 / Chapter 5.2 --- Future work --- p.85 / Bibliography --- p.86 / Appendix A Details about operation --- p.90 / Appendix B Complex pole derivation --- p.93 / Appendix C Details about noise derivation --- p.94 / Appendix D Details about sub-threshold operation --- p.98 / Appendix E (in CD-ROM) Transfer Function Derivation / Appendix F (in CD-ROM) Noise Transfer Function Derivation

Identiferoai:union.ndltd.org:cuhk.edu.hk/oai:cuhk-dr:cuhk_326143
Date January 2008
ContributorsWong, Kak Yeung Alex., Chinese University of Hong Kong Graduate School. Division of Electronic Engineering.
Source SetsThe Chinese University of Hong Kong
LanguageEnglish, Chinese
Detected LanguageEnglish
TypeText, bibliography
Formatprint, xiii, 99 leaves : ill. ; 30 cm. + 1 CD-ROM (4 3/4 in.)
RightsUse of this resource is governed by the terms and conditions of the Creative Commons “Attribution-NonCommercial-NoDerivatives 4.0 International” License (http://creativecommons.org/licenses/by-nc-nd/4.0/)

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