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Stochastic Approaches to Electron Transport in Micro- and Nanostructures | Mihail Nedjalkov (u. a.) | Taschenbuch | Modeling and Simulation in Science, Engineering and Technology | Paperback | xvi - Nedjalkov, Mihail
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Stochastic Approaches to Electron Transport in Micro- and Nanostructures - Taschenbuch

2022, ISBN: 3030679195

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Details zum Buch

Detailangaben zum Buch - Stochastic Approaches to Electron Transport in Micro- and Nanostructures


EAN (ISBN-13): 9783030679194
ISBN (ISBN-10): 3030679195
Taschenbuch
Erscheinungsjahr: 2022
Herausgeber: Springer International Publishing

Buch in der Datenbank seit 2022-11-25T17:44:12+01:00 (Berlin)
Detailseite zuletzt geändert am 2024-04-15T03:24:52+02:00 (Berlin)
ISBN/EAN: 3030679195

ISBN - alternative Schreibweisen:
3-030-67919-5, 978-3-030-67919-4
Alternative Schreibweisen und verwandte Suchbegriffe:
Autor des Buches: dimov, nedjalkov


Daten vom Verlag:

Autor/in: Mihail Nedjalkov; Ivan Dimov; Siegfried Selberherr
Titel: Modeling and Simulation in Science, Engineering and Technology; Stochastic Approaches to Electron Transport in Micro- and Nanostructures
Verlag: Birkhäuser; Springer International Publishing
214 Seiten
Erscheinungsjahr: 2022-04-07
Cham; CH
Gedruckt / Hergestellt in Niederlande.
Sprache: Englisch
149,79 € (DE)
153,99 € (AT)
165,50 CHF (CH)
POD
XVI, 214 p. 12 illus., 1 illus. in color.

BC; Hardcover, Softcover / Mathematik/Sonstiges; Angewandte Mathematik; Verstehen; Modeling and simulation of electron transport; Boltzmann and Wigner equations; stochastic Monte Carlo algorithms; Micro- and Nanoelectronics; Computational Physics; Applications of Mathematics; Theoretical, Mathematical and Computational Physics; Computer Science; Mathematische Physik; Informatik; BB

The book serves as a synergistic link between the development of mathematical models and the emergence of stochastic (Monte Carlo) methods applied for the simulation of current transport in electronic devices. Regarding the models, the historical evolution path, beginning from the classical charge carrier transport models for microelectronics to current quantum-based nanoelectronics, is explicatively followed. Accordingly, the solution methods are elucidated from the early phenomenological single particle algorithms applicable for stationary homogeneous physical conditions up to the complex algorithms required for quantum transport, based on particle generation and annihilation. The book fills the gap between monographs focusing on the development of the theory and the physical aspects of models, their application, and their solution methods and monographs dealing with the purely theoretical approaches for finding stochastic solutions of Fredholm integral equations.

Wigner Function Modeling.- 12. Evolution in a Quantum Wire.- 13. Hierarchy of Kinetic Models.- 14. Stationary Quantum Particle Attributes.- 15. Transient Quantum Particle Attributes.

 

Part I Aspets of Electron Transport Modeling Part II Stochastic Algorithms for Boltzmann Transport .- Part III Stochastic Algorithms for Quantum Transport:   Mihail (Mixi) Nedjalkov

is a Chair Professor at the TU Wien, Austria. With his research teams, he has published about 2000 manuscripts in journals, in books, and in proceedings, including 3 monographs and about 50 edited volumes. His research interests are modeling and simulation for nano- and microelectronics engineering. He has received numerous honors; he is a Fellow of the Institute of Electrical and Electronics Engineers, of the Academia Europaea, and of the European Academy of Science and Arts.

Ivan Dimov Siegfried Selberherr

The book serves as a synergistic link between the development of mathematical models and the emergence of stochastic (Monte Carlo) methods applied for the simulation of current transport in electronic devices. Regarding the models, the historical evolution path, beginning from the classical charge carrier transport models for microelectronics to current quantum-based nanoelectronics, is explicatively followed. Accordingly, the solution methods are elucidated from the early phenomenological single particle algorithms applicable for stationary homogeneous physical conditions up to the complex algorithms required for quantum transport, based on particle generation and annihilation. The book fills the gap between monographs focusing on the development of the theory and the physical aspects of models, their application, and their solution methods and monographs dealing with the purely theoretical approaches for finding stochastic solutions of Fredholm integral equations.


Presents the synergistic link between the development of mathematical models in micro- and nanoelectronics and the emergence of stochastic methods for their simulation Describes the evolution of the stochastic algorithms from classical to quantum transport conditions Fills the gap between other monographs which focus on the physical or numerical theory

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