National Science Library of Georgia

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Modeling nanowire and double-gate junctionless field-effect transistors / Farzan Jazaeri, École Polytechnique Fédérale de Lausanne, Jean-Michel Sallese, École Polytechnique Fédérale de Lausanne.

By: Contributor(s): Material type: TextTextPublisher: Cambridge : Cambridge University Press, 2018Description: 1 online resource (xix, 233 pages) : digital, PDF file(s)Content type:
  • text
Media type:
  • computer
Carrier type:
  • online resource
ISBN:
  • 9781316676899 (ebook)
Subject(s): Additional physical formats: Print version: : No titleDDC classification:
  • 621.3815/284 23
LOC classification:
  • TK7871.95 .J39 2018
Online resources: Summary: The first book on the topic, this is a comprehensive introduction to the modeling and design of junctionless field effect transistors (FETs). Beginning with a discussion of the advantages and limitations of the technology, the authors also provide a thorough overview of published analytical models for double-gate and nanowire configurations, before offering a general introduction to the EPFL charge-based model of junctionless FETs. Important features are introduced gradually, including nanowire versus double-gate equivalence, technological design space, junctionless FET performances, short channel effects, transcapacitances, asymmetric operation, thermal noise, interface traps, and the junction FET. Additional features compatible with biosensor applications are also discussed. This is a valuable resource for students and researchers looking to understand more about this new and fast developing field.
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Title from publisher's bibliographic system (viewed on 26 Feb 2018).

The first book on the topic, this is a comprehensive introduction to the modeling and design of junctionless field effect transistors (FETs). Beginning with a discussion of the advantages and limitations of the technology, the authors also provide a thorough overview of published analytical models for double-gate and nanowire configurations, before offering a general introduction to the EPFL charge-based model of junctionless FETs. Important features are introduced gradually, including nanowire versus double-gate equivalence, technological design space, junctionless FET performances, short channel effects, transcapacitances, asymmetric operation, thermal noise, interface traps, and the junction FET. Additional features compatible with biosensor applications are also discussed. This is a valuable resource for students and researchers looking to understand more about this new and fast developing field.

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