Understanding the growth of epitaxial InAs/GaAs nanowires

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Materials in smaller scales exhibit promising properties that are useful for wide variety of applications. Semiconductor quantum wells and quantum dots are two main examples of low-dimensional systems, where the quantum wells act as two-dimensional systems and the quantum dots act as zero-dimensional systems. Alternatively, semiconductor nanowires act as one-dimensional materials, and they exhibit promising and device applicable properties. These semiconductor nanowires are expected to be the building blocks for future nanoelectronic and nano-optoelectronic device technology. Compositional modulation within an individual nanowire (heterostructure) enables the designing of band structure of a nanowire and thereby allows the fabrication of single nanowire devices. These nanowire heterostructures show many potential properties and consequent applications. However, the fundamental growth mechanisms nanowire heterostructures have not been explored sufficiently due to their complex nature of the growth. In this regard, this book addresses the fundamental issues associated with the growth of epitaxial axial and radial nanowire heterostructures.

Autorentext

Dr. Mohan chand Paladugu received his PhD degree in Materials Engineering from the University of Queensland, Brisbane, Australia and Master of Technology (M.Tech) degree from Indian Institute of Technology Madras (IITM), India. Additionally, he has few years of essential working experience in Metallurgical and Materials processing industries.

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Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09783838341422
    • Sprache Englisch
    • Genre Maschinenbau
    • Anzahl Seiten 120
    • Größe H220mm x B150mm x T8mm
    • Jahr 2010
    • EAN 9783838341422
    • Format Kartonierter Einband
    • ISBN 3838341422
    • Veröffentlichung 26.01.2010
    • Titel Understanding the growth of epitaxial InAs/GaAs nanowires
    • Autor Mohan Chand Paladugu
    • Untertitel using Electron Microscopy - for future nano-optoelectronics
    • Gewicht 197g
    • Herausgeber LAP LAMBERT Academic Publishing

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