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From semiconductor fundamentals to semiconductor devices used in
the telecommunications and computing industries, this 2005 book
provides a solid grounding in the most important devices used in
the hottest areas of electronic engineering. The book includes
coverage of future approaches to computing hardware and RF power
amplifiers, and explains how emerging trends and system demands of
computing and telecommunications systems influence the choice,
design and operation of semiconductors. Next, the field effect
devices are described, including MODFETs and MOSFETs. Short channel
effects and the challenges faced by continuing miniaturisation are
then addressed. The rest of the book discusses the structure,
behaviour, and operating requirements of semiconductor devices used
in lightwave and wireless telecommunications systems. This is both
an excellent senior/graduate text, and a valuable reference for
engineers and researchers in the field.
From semiconductor fundamentals to semiconductor devices used in
the telecommunications and computing industries, this 2005 book
provides a solid grounding in the most important devices used in
the hottest areas of electronic engineering. The book includes
coverage of future approaches to computing hardware and RF power
amplifiers, and explains how emerging trends and system demands of
computing and telecommunications systems influence the choice,
design and operation of semiconductors. Next, the field effect
devices are described, including MODFETs and MOSFETs. Short channel
effects and the challenges faced by continuing miniaturisation are
then addressed. The rest of the book discusses the structure,
behaviour, and operating requirements of semiconductor devices used
in lightwave and wireless telecommunications systems. This is both
an excellent senior/graduate text, and a valuable reference for
engineers and researchers in the field.
Modern fabrication techniques have made it possible to produce
semiconductor devices whose dimensions are so small that quantum
mechanical effects dominate their behavior. This book describes the
key elements of quantum mechanics, statistical mechanics, and
solid-state physics that are necessary in understanding these
modern semiconductor devices. The author begins with a review of
elementary quantum mechanics, and then describes more advanced
topics, such as multiple quantum wells. He then disusses
equilibrium and nonequilibrium statistical mechanics. Following
this introduction, he provides a thorough treatment of solid-state
physics, covering electron motion in periodic potentials,
electron-phonon interaction, and recombination processes. The final
four chapters deal exclusively with real devices, such as
semiconductor lasers, photodiodes, flat panel displays, and
MOSFETs. The book contains many homework exercises and is suitable
as a textbook for electrical engineering, materials science, or
physics students taking courses in solid-state device physics. It
will also be a valuable reference for practicing engineers in
optoelectronics and related areas.
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