Defects in Semiconductors Icds-18

Defects in Semiconductors Icds-18
Author: M. Suezawa
Publisher: Trans Tech Publications
Total Pages: 608
Release: 1996
Genre: Science
ISBN:

The study of defects in semiconductors has never been independent of the progress in semiconductor technology. With rapid development in semiconductor device technology, novel types of defects as well as very peculiar behavior of defects in semiconductors have been found one after another. New subjects in the basic study of defects have often been arisen from experiences in the practical field. Great progress has also been achieved in device production technology on the basis of the knowledge clarified in the basic field.

Defects in Semiconductors

Defects in Semiconductors
Author:
Publisher: Academic Press
Total Pages: 458
Release: 2015-06-08
Genre: Technology & Engineering
ISBN: 0128019409

This volume, number 91 in the Semiconductor and Semimetals series, focuses on defects in semiconductors. Defects in semiconductors help to explain several phenomena, from diffusion to getter, and to draw theories on materials' behavior in response to electrical or mechanical fields. The volume includes chapters focusing specifically on electron and proton irradiation of silicon, point defects in zinc oxide and gallium nitride, ion implantation defects and shallow junctions in silicon and germanium, and much more. It will help support students and scientists in their experimental and theoretical paths. - Expert contributors - Reviews of the most important recent literature - Clear illustrations - A broad view, including examination of defects in different semiconductors

Identification of Defects in Semiconductors

Identification of Defects in Semiconductors
Author:
Publisher: Academic Press
Total Pages: 449
Release: 1998-10-27
Genre: Science
ISBN: 008086449X

GENERAL DESCRIPTION OF THE SERIESSince its inception in 1966, the series of numbered volumes known as Semiconductors and Semimetals has distinguished itself through the careful selection of well-known authors, editors, and contributors. The "Willardson and Beer" Series, as it is widely known, has succeeded in publishing numerous landmark volumes and chapters. Not only did many of these volumes make an impact at the time of their publication, but they continue to be well-cited years after their original release. Recently, Professor Eicke R. Weber of the University of California at Berkeley joined as a co-editor of the series. Professor Weber, a well-known expert in the field of semiconductor materials, will further contribute to continuing the series' tradition of publishing timely, highly relevant, and long-impacting volumes. Some of the recent volumes, such as Hydrogen in Semiconductors, Imperfections in III/V Materials, Epitaxial Microstructures, High-Speed Heterostructure Devices, Oxygen in Silicon, and others promise indeed that this tradition will be maintained and even expanded.Reflecting the truly interdisciplinary nature of the field that the series covers, the volumes in Semiconductors and Semimetals have been and will continue to be of great interest to physicists, chemists, materials scientists, and device engineers in modern industry. GENERAL DESCRIPTION OF THE VOLUMEThis volume has contributions on Advanced Characterization Techniques with a focus on defect identification. The combination of beam techniques with electrical and optical characterization has not been discussed elsewhere.

Theory of Defects in Semiconductors

Theory of Defects in Semiconductors
Author: David A. Drabold
Publisher: Springer Science & Business Media
Total Pages: 320
Release: 2007
Genre: Science
ISBN:

Semiconductor science and technology is the art of defect engineering. The theoretical modeling of defects has improved dramatically over the past decade. These tools are now applied to a wide range of materials issues: quantum dots, buckyballs, spintronics, interfaces, amorphous systems, and many others. This volume presents a coherent and detailed description of the field, and brings together leaders in theoretical research. Today's state-of-the-art, as well as tomorrow’s tools, are discussed: the supercell-pseudopotential method, the GW formalism,Quantum Monte Carlo, learn-on-the-fly molecular dynamics, finite-temperature treatments, etc. A wealth of applications are included, from point defects to wafer bonding or the propagation of dislocation.

Dopants and Defects in Semiconductors

Dopants and Defects in Semiconductors
Author: Matthew D. McCluskey
Publisher: CRC Press
Total Pages: 392
Release: 2012-02-23
Genre: Science
ISBN: 1439831521

Dopants and Defects in Semiconductors covers the theory, experimentation, and identification of impurities, dopants, and intrinsic defects in semiconductors. The book fills a crucial gap between solid-state physics and more specialized course texts. The authors first present introductory concepts, including basic semiconductor theory, defect classifications, crystal growth, and doping. They then explain electrical, vibrational, optical, and thermal properties. Moving on to characterization approaches, the text concludes with chapters on the measurement of electrical properties, optical spectroscopy, particle-beam methods, and microscopy. By treating dopants and defects in semiconductors as a unified subject, this book helps define the field and prepares students for work in technologically important areas. It provides students with a solid foundation in both experimental methods and the theory of defects in semiconductors.

Point Defects in Semiconductors I

Point Defects in Semiconductors I
Author: M. Lannoo
Publisher: Springer Science & Business Media
Total Pages: 283
Release: 2012-12-06
Genre: Science
ISBN: 364281574X

From its early beginning before the war, the field of semiconductors has developped as a classical example where the standard approximations of 'band theory' can be safely used to study its interesting electronic properties. Thus in these covalent crystals, the electronic structure is only weakly coupled with the atomic vibrations; one-electron Bloch functions can be used and their energy bands can be accurately computed in the neighborhood of the energy gap between the valence and conduction bands; nand p doping can be obtained by introducing substitutional impurities which only introduce shallow donors and acceptors and can be studied by an effective-mass weak-scattering description. Yet, even at the beginning, it was known from luminescence studies that these simple concepts failed to describe the various 'deep levels' introduced near the middle of the energy gap by strong localized imperfections. These imperfections not only include some interstitial and many substitutional atoms, but also 'broken bonds' associated with surfaces and interfaces, dis location cores and 'vacancies', i.e., vacant iattice sites in the crystal. In all these cases, the electronic structure can be strongly correlated with the details of the atomic structure and the atomic motion. Because these 'deep levels' are strongly localised, electron-electron correlations can also playa significant role, and any weak perturbation treatment from the perfect crystal structure obviously fails. Thus, approximate 'strong coupling' techniques must often be used, in line' with a more chemical de scription of bonding.

Gettering Defects in Semiconductors

Gettering Defects in Semiconductors
Author: Victor A. Perevostchikov
Publisher: Springer Science & Business Media
Total Pages: 400
Release: 2005-12-12
Genre: Technology & Engineering
ISBN: 3540294996

Gettering Defects in Semiconductors fulfills three basic purposes: – to systematize the experience and research in exploiting various gettering techniques in microelectronics and nanoelectronics; – to identify new directions in research, particularly to enhance the perspective of professionals and young researchers and specialists; – to fill a gap in the contemporary literature on the underlying semiconductor-material theory. The authors address not only well-established gettering techniques but also describe contemporary trends in gettering technologies from an international perspective. The types and properties of structural defects in semiconductors, their generating and their transforming mechanisms during fabrication are described. The primary emphasis is placed on classifying and describing specific gettering techniques, their specificity arising from both their position in a general technological process and the regimes of their application. This book addresses both engineers and material scientists interested in semiconducting materials theory and also undergraduate and graduate students in solid–state microelectronics and nanoelectronics. A comprehensive list of references provides readers with direction for further reading.

Shallow-level Centers In Semiconductors - Proceedings Of The 7th International Conference

Shallow-level Centers In Semiconductors - Proceedings Of The 7th International Conference
Author: C A J Ammerlaan
Publisher: World Scientific
Total Pages: 554
Release: 1997-04-19
Genre:
ISBN: 9814546674

This book is devoted to the specific physical and chemical properties of centers in semiconductors with shallow energy levels and electronic distributions of an extended size. Reports are included on the most advanced experimental and theoretical methods for identifying and further characterizing these materials. Attention is given to such topics as shallow-level centers in host semiconductors of lower dimensionality, centers in wide-bandgap semiconductors, shallow excited states of centers with deep ground states, passivation of centers, and other aspects of impurity control during crystal growth and processing with its relevance to applications.

Extended Defects in Semiconductors

Extended Defects in Semiconductors
Author: D. B. Holt
Publisher: Cambridge University Press
Total Pages: 625
Release: 2007-04-12
Genre: Science
ISBN: 1139463594

A discussion of the basic properties of structurally extended defects, their effect on the electronic properties of semiconductors, their role in semiconductor devices, and techniques for their characterization. This text is suitable for advanced undergraduate and graduate students in materials science and engineering, and for those studying semiconductor physics.