图书简介
The concepts of the Electron Statistics (ES) and the ES dependent electronic properties are basic pillars in semiconductor electronics and this first-of-its-kind book deals with the said concepts in doping superlattices (SLs), quantum well, quantum wire and quantum dot SLs, effective mass SLs, SLs with graded interfaces and Fibonacci SLs under different physical conditions respectively. The influences of intense radiation and strong electric fields under said concepts have been considered together with the heavily doped SLs in this context on the basis of newly formulated the electron energy spectra in all the cases. We have suggested experimental determinations of the Einstein relation for the Diffusivity-Mobility ratio, the Debye screening length, Elastic Constants and the content of this book finds 25 different applications in the arena of nanoscience and nanotechnology.This book contains hundred open research problems which form the integral part of the text and are useful for both PhD aspirants and researchers. It is written for post graduate students of various departments of different academic organizations, engineers and professionals in the fields of solid state electronics, materials science, solid state sciences, nano-science, nanotechnology and nano materials in general.Key FeaturesThis first book solely deals with the Electron Statistics in Quantum Confined Superlattices (SLs) and the SLs considered are doping, quantum well, quantum wire, quantum dot, III-V, II-VI, IV-VI, HgTe/CdTe (both graded interfaces and effective mass) together with their heavily doped counter parts. We have also considered the influences of strong magnetic quantization, electric field and intense radiation on the ES dependent electronic properties of the said SLs having various band structures together with Fibonacci SLs in this contextRepresents a useful reference source for researchers and designers of quantized structuresContains twenty five applications with reference to nanostructuresDiscusses the influence of strong external electric field on nano-devicesPresents the theoretical simulation of nano-electronic device materials in the quantized wave vector spaceThis monograph contains 100 open research problems which form the integral part of the text and are useful for both PhD aspirants and researchers. Various expressions and a few chapters of this first monograph have been appearing for the first time in printed form
About the Authors; Symbols; The ES in Doping Superlattices of Non-Parabolic Materials: The ES in Doping Superlattices and Their Quantized Counter Parts; The ES in Quantized Superlattices: The ES in Quantum Well Superlattices (QWSLs); The ES in Quantum Wire Superlattices (QWSLs); The ES in Quantum Dot SLs; The ES in SLs Under Magnetic Quantization; The ES in QWSLs Under Magnetic Quantization; The ES in SLs having Kane Type Energy Bands in the Presence of Light Waves: The ES Under Photo Excitation in SLs Having Kane Type Energy Bands; The ES in SLs having Kane Type Energy Bands in the Presence of Electric Field: The ES under Electric Field in SLs Having Kane Type Energy Bands; The ES in Quantum Confined Heavily Doped (HD) Doping Superlattices: The ES in HD Doping Superlattices of Non-Parabolic Semiconductors; The ES in HD Doping Superlattices of Non-Parabolic Semiconductors Under Magnetic Quantization; The ES in Heavily Doped Quantum Confined Superlattices: The ES in HDQWSLs; The ES in HD Quantum Wire SLs; The ES in HD Quantum Dot SLs; The ES in HDSLs Under Magnetic Quantization; The ES in HDQWSLs Under Magnetic Quantization; The ES in SLs having Kane Type Energy Bands in the Presence of Light Waves: The ES under Photo Excitation in HDSLs having Kane Type Energy Bands; The ES in SLs having Kane Type Energy Bands in the Presence of Electric Field: The ES under Electric Field in HD SLs having Kane Type Energy Bands; The ES in Fibonacci Superlattices; Conclusion and Future Research; Appendices: The Numerical Values of the Energy Band Constants of Few Materials; The ES in Superlattices under Tight Binding Approximations; The Generalized Distribution Functions of Heavily Doped Materials; Materials Index; Subject Index
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