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This textbook describes the physics of semiconductor nanostructures with emphasis on their electronic transport properties. At its heart are five fundamental transport phenomena: quantized conductance, tunnelling transport, the Aharonov-Bohm effect, the quantum Hall effect, and the Coulomb blockade effect.The book starts out with the basics of solid state and semiconductor physics, such as crystal structure, band structure, and effective mass approximation, including spin-orbit interaction effects important for research in semiconductor spintronics. It contains material aspects such as band engineering, doping, gating, and a selection of nanostructure fabrication techniques. The book discusses the Drude-Boltzmann-Sommerfeld transport theory as well as conductance quantization and the Landauer-Buttiker theory. These concepts are extended to mesoscopic interference phenomena and decoherence, magnetotransport, and interaction effects in quantum-confined systems, guiding the reader from fundamental effects to specialized state-of-the-art experiments.The book will provide a thorough introduction into the topic for graduate and PhD students, and will be a useful reference for lecturers and researchers working in the field.
This text investigates the fundamental physical principles governing electronic transport within semiconductor nanostructures. Author Thomas Ihn, a recognized expert in mesoscopic physics, synthesizes foundational solid-state theory with advanced quantum transport phenomena. The book provides a structured framework that bridges the gap between basic semiconductor physics and the complex behavior of quantum-confined systems, utilizing both theoretical derivations and experimental observations to explain how electrons behave at the nanoscale.
What You Will Find
Experts and academic reviewers frequently cite this work as a rigorous and foundational resource for graduate-level study in condensed matter physics. Readers often note the high density of the mathematical derivations, which makes it a preferred reference for researchers and PhD students specializing in semiconductor spintronics and mesoscopic systems.
Page Count:
580
Publication Date:
2010-02-08
Publisher:
Oxford University Press
ISBN-10:
019953442X
ISBN-13:
9780199534425
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