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Nanostructures
Details
Progress in nanoscience is becoming increasingly dependent on simulation and modelling. This is due to a combination of three factors: the reduced size of nano-objects, the increasing power of computers, and the development of new theoretical methods. This book represents the first attempt to provide the theoretical background needed by physicists, engineers and students to simulate nanodevices, semiconductor quantum dots and molecular devices. It presents in a unified way the theoretical concepts, the more recent semi-empirical and ab-initio methods, and their application to experiments. The topics include quantum confinement, dielectric and optical properties, non-radiative processes, defects and impurities, and quantum transport. This guidebook not only provides newcomers with an accessible overview (requiring only basic knowledge of quantum mechanics and solid-state physics) but also provides active researchers with practical simulation tools.
Comprehensive survey on how to reduce expenses on experiments and technology development by applying computer simulation Includes supplementary material: sn.pub/extras
Inhalt
1 General Basis for Computations and Theoretical Models.- 2 Quantum Confined Systems.- 3 Dielectric Properties.- 4 Quasi-particles and Excitons.- 5 Optical Properties and Radiative Processes.- 6 Defects and Impurities.- 7 Non-radiative and Relaxation Processes.- 8 Transport.- A Matrix Elements of the Renormalizing Potential.- B Macroscopic Averages in Maxwell's Equations.- C Polarization Correction.- References.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09783642058479
- Auflage Softcover reprint of hardcover 1st edition 2004
- Sprache Englisch
- Genre Allgemeines & Lexika
- Lesemotiv Verstehen
- Größe H235mm x B155mm x T18mm
- Jahr 2010
- EAN 9783642058479
- Format Kartonierter Einband
- ISBN 3642058477
- Veröffentlichung 06.12.2010
- Titel Nanostructures
- Autor Michel Lannoo , Christophe Jean Delerue
- Untertitel Theory and Modeling
- Gewicht 487g
- Herausgeber Springer Berlin Heidelberg
- Anzahl Seiten 320