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Heavily-Doped 2D-Quantized Structures and the Einstein Relation electronic resource by Kamakhya P. Ghatak, Sitangshu Bhattacharya.

By: Ghatak, Kamakhya P [author.]Contributor(s): Bhattacharya, Sitangshu [author.] | SpringerLink (Online service)Material type: TextTextSeries: Springer Tracts in Modern PhysicsPublication details: Cham : Springer International Publishing : Imprint: Springer, 2015Description: XL, 347 p. 58 illus. online resourceContent type: text Media type: computer Carrier type: online resourceISBN: 9783319083803Subject(s): physics | Solid State Physics | Nanoscale science | Nanoscience | Nanostructures | Semiconductors | Nanotechnology | Optical materials | Electronic materials | Physics | Solid State Physics | Nanotechnology and Microengineering | Optical and Electronic Materials | Semiconductors | Nanoscale Science and TechnologyDDC classification: 530.41 LOC classification: QC176-176.9Online resources: Click here to access online
Contents:
From the Contents: The ER in Quantum Wells (QWs) of Heavily Doped(HD) Non-Parabolic Semiconductors -- The ER in NIPI Structures of HD Non-Parabolic Semiconductors -- The ER in Accumulation Layers of HD Non-Parabolic Semiconductors -- Suggestion for Experimental Determinations of 2D and 3D ERs and few Related Applications -- Conclusion and Scope for Future.
In: Springer eBooksSummary: This book presents the Einstein Relation(ER) in two-dimensional (2-D) Heavily Doped(HD) Quantized Structures. The materials considered are quantized structures of HD non-linear optical, III-V, II-VI, Ge, Te, Platinum Antimonide, stressed materials, GaP, Gallium Antimonide, II-V, Bismuth Telluride together with various types of HD superlattices and their Quantized counterparts respectively. The ER in HD opto-electronic materials and their nanostructures is studied in the presence of strong light waves and intense electric fields on the basis of newly formulated electron dispersion laws that control the studies of such quantum effect devices. The suggestion for the experimental determination of HD 2D and 3D ERs and the importance of measurement of band gap in HD optoelectronic materials under intense built-in electric field in nanodevices and strong external photo excitation (for measuring photon induced physical properties) are also discussed in this context. The influence of crossed electric and quantizing magnetic fields on the ER of the different 2D HD quantized structures (quantum wells, inversion and accumulation layers, quantum well HD superlattices and nipi structures) under different physical conditions is discussed in detail. This monograph contains 100 open research problems which form the integral part of the text and are useful for both Ph.D aspirants and researchers in the fields of condensed matter physics, solid-state sciences, materials science, nano-science and technology and allied fields.
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From the Contents: The ER in Quantum Wells (QWs) of Heavily Doped(HD) Non-Parabolic Semiconductors -- The ER in NIPI Structures of HD Non-Parabolic Semiconductors -- The ER in Accumulation Layers of HD Non-Parabolic Semiconductors -- Suggestion for Experimental Determinations of 2D and 3D ERs and few Related Applications -- Conclusion and Scope for Future.

This book presents the Einstein Relation(ER) in two-dimensional (2-D) Heavily Doped(HD) Quantized Structures. The materials considered are quantized structures of HD non-linear optical, III-V, II-VI, Ge, Te, Platinum Antimonide, stressed materials, GaP, Gallium Antimonide, II-V, Bismuth Telluride together with various types of HD superlattices and their Quantized counterparts respectively. The ER in HD opto-electronic materials and their nanostructures is studied in the presence of strong light waves and intense electric fields on the basis of newly formulated electron dispersion laws that control the studies of such quantum effect devices. The suggestion for the experimental determination of HD 2D and 3D ERs and the importance of measurement of band gap in HD optoelectronic materials under intense built-in electric field in nanodevices and strong external photo excitation (for measuring photon induced physical properties) are also discussed in this context. The influence of crossed electric and quantizing magnetic fields on the ER of the different 2D HD quantized structures (quantum wells, inversion and accumulation layers, quantum well HD superlattices and nipi structures) under different physical conditions is discussed in detail. This monograph contains 100 open research problems which form the integral part of the text and are useful for both Ph.D aspirants and researchers in the fields of condensed matter physics, solid-state sciences, materials science, nano-science and technology and allied fields.

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