Quantum mechanics for nanostructures
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Author
Contributions
- Sementsov, Dmitry I. - Contributor
- Vagidov, Nizami Z. - Contributor
Publication
2010 - Cambridge University Press, New York, New York (State)
Language
English
Word Count
0 words, Guess
Page Count
0 pages
Identifiers
- Internet Archivequantummechanics00miti
- Internet Archivequantummechanics00miti_538
- ISBN-139780521763660
- ISBN-100521763665
- Library of Congress Control Number2010000700
and 2 more
- Better World Books9780521763660
- Open LibraryOL24028850M
Classifications
- DDC620/.5
- LCCTA357 .M58 2010
Description
"The properties of new nanoscale materials, their fabrication and applications, as well as the operational principles of nanodevices and systems, are solely determined by quantum-mechanical laws and principles. This textbook introduces engineers to quantum mechanics and the world of nanostructures, enabling them to apply the theories to numerous nanostructure problems. The textbook covers the fundamentals of quantum mechanics, including uncertainty relations, the Schrödinger equation, perturbation theory, and tunneling. These are then applied to a quantum dot, the smallest artificial atom, and compared to hydrogen, the smallest atom in nature. Nanoscale objects with higher dimensionality, such as quantum wires and quantum wells, are introduced, as well as nanoscale materials and nanodevices. Numerous examples throughout the text help students to understand the material"--Provided by publisher. "The properties of new nanoscale materials, their fabrication and applications, as well as the operational principles of nanodevices and systems, are solely determined by quantum-mechanical laws and principles. This textbook introduces engineers to quantum mechanics and the world of nanostructures, enabling them to apply the theories to numerous nanostructure problems. The book covers the fundamentals of quantum mechanics, including uncertainty relations, the Schrodinger equation, perturbation theory, and tunneling. These are then applied to a quantum dot, the smallest artificial atom, and compared with the case of hydrogen, the smallest atom in nature. Nanoscale objects with higher dimensionality, such as quantum wires and quantum wells, are introduced, as well as nanoscale materials and nanodevices. Numerous examples throughout the text help students to understand the material"--Provided by publisher.
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