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Continuous-Time Sigma-Delta A/D Conversion: Fundamentals, Performance Limits and Robust Implementations (Springer Series in Advanced Microelectronics)
 
 
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Continuous-Time Sigma-Delta A/D Conversion: Fundamentals, Performance Limits and Robust Implementations (Springer Series in Advanced Microelectronics) [Hardcover]

Friedel Gerfers (Author), Maurits Ortmanns (Author)

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Book Description

3540284060 978-3540284062 December 22, 2005 1
Sigma-delta A/D converters are a key building block in wireless and multimedia applications. This comprehensive book deals with all relevant aspects arising during the analysis, design and simulation of the now widespread continuous-time implementations of sigma-delta modulators. The results of several years of research by the authors in the field of CT sigma-delta modulators are covered, including the analysis and modeling of different CT modulator architectures, CT/DT loop filter synthesis, a detailed error analysis of all components, and possible compensation/correction schemes for the non-ideal behavior in CT sigma-delta modulators. Guidance for obtaining low-power consumption and several practical implementations are also presented. It is shown that all the proposed new theories, architectures and possible correction techniques have been confirmed by measurements on discrete or integrated circuits. Quantitative results are also provided, thus enabling prediction of the resulting accuracy.

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From the Back Cover

Sigma-delta A/D converters are a key building block in wireless and multimedia applications. This comprehensive book deals with all relevant aspects arising during the analysis, design and simulation of the now widespread continuous-time implementations of sigma-delta modulators. The results of several years of research by the authors in the field of CT sigma-delta modulators are covered, including the analysis and modeling of different CT modulator architectures, CT/DT loop filter synthesis, a detailed error analysis of all components, and possible compensation/correction schemes for the non-ideal behavior in CT sigma-delta modulators. Guidance for obtaining low-power consumption and several practical implementations are also presented. It is shown that all the proposed new theories, architectures and possible correction techniques have been confirmed by measurements on discrete or integrated circuits. Quantitative results are also provided, thus enabling prediction of the resulting accuracy.

About the Author

Maurits Ortmanns received the Dipl.-Ing. (M.Sc.) degree in electrical engineering with highest honours from the Saarland University, Saarbruecken, Germany, in 1999. In 1997 and 1998, he was with the Research Center Karlsruhe, Germany, and with EXAR, Inc., Fremont, Ca, as a student research assistant. In 1999, Mr. Ortmanns joined the Institute of Microelectronics of the Saarland University, where he started to work towards the Ph.D. degree in the field of continuous-time sigma-delta modulator design. In 2002, he moved to the Institute of Microsystem Technology, Albert-Ludwigs-University, Freiburg, Germany. Since April 2004, Mr. Ortmanns is with SCI-Worx GmbH, Hannover, Germany, where he is working in the field of RF analog circuits. His main research interests include microelectronics, microsensors and biosensors. Mr. Ortmanns is member of the German National Academic Foundation.

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Inside This Book (learn more)
Key Phrases - Statistically Improbable Phrases (SIPs): (learn more)
excess loop delay, clock jitter sensitivity, modulator scaling, clock jitter influence, integrator scaling coefficient, rectangular feedback, integrator gain variations, feedback dac, internal quantizer, integrator gain errors, feedback waveform, cascaded modulators, modulator loop filter, quantizer gain, modulator resolution, internal quantization, multibit quantization, overall modulator, virtual ground node, cancellation logic, integrator transfer function, increased noise floor, modulator architecture, last integrator, feedback pulse
Key Phrases - Capitalized Phrases (CAPs): (learn more)
Filter Nonidealities, Modulator Design Examples, Low-Power Limits, Finite Amplifier Slew Rate, Modulator Issues, Modulators Table, Monte Carlo
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