Semiconductor Modeling Techniques

This book describes the key theoretical techniques for semiconductor research to quantitatively calculate and simulate the properties. It presents particular techniques to study novel semiconductor materials, such as 2D heterostructures, quantum wires, quantum dots and nitrogen containing III-V allo...

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Bibliographic Details
Other Authors: Marie, Xavier (Editor), Balkan, Naci (Editor)
Format: eBook
Language:English
Published: Berlin, Heidelberg Springer Berlin Heidelberg 2012, 2012
Edition:1st ed. 2012
Series:Springer Series in Materials Science
Subjects:
Online Access:
Collection: Springer eBooks 2005- - Collection details see MPG.ReNa
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245 0 0 |a Semiconductor Modeling Techniques  |h Elektronische Ressource  |c edited by Xavier Marie, Naci Balkan 
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505 0 |a Introduction to semiconductor heterostructures -- Finite element method and applications in semiconductors -- Theory of electronic transport in nanostructures -- Electron-phonon interactions -- Nonlinear effects at high electric fields -- Band structure engineering for optoelectronic devices -- Tight-binding/pseudo-potential calculations -- Theory and modelling of vertical cavity devices -- Fundamental theory of lasers and SOAs 
653 |a Nanophysics 
653 |a Semiconductors 
653 |a Electronics and Microelectronics, Instrumentation 
653 |a Applied and Technical Physics 
653 |a Electronic circuits 
653 |a Optical Materials 
653 |a Nanoscience 
653 |a Physics 
653 |a Electronics 
653 |a Optical materials 
653 |a Electronic Circuits and Systems 
700 1 |a Balkan, Naci  |e [editor] 
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520 |a This book describes the key theoretical techniques for semiconductor research to quantitatively calculate and simulate the properties. It presents particular techniques to study novel semiconductor materials, such as 2D heterostructures, quantum wires, quantum dots and nitrogen containing III-V alloys. The book is aimed primarily at newcomers working in the field of semiconductor physics to give guidance in theory and experiment. The theoretical techniques for electronic and optoelectronic devices are explained in detail