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Titlebook: Quantum Hybrid Electronics and Materials; Yoshiro Hirayama,Kazuhiko Hirakawa,Hiroshi Yamaguc Book 2022 Springer Nature Singapore Pte Ltd.

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书目名称Quantum Hybrid Electronics and Materials
编辑Yoshiro Hirayama,Kazuhiko Hirakawa,Hiroshi Yamaguc
视频video
概述Offers topical reviews of hybrid quantum systems in solid state science.Covers emerging and innovative nano-carbon and topological materials.Features reviews by prominent researchers
丛书名称Quantum Science and Technology
图书封面Titlebook: Quantum Hybrid Electronics and Materials;  Yoshiro Hirayama,Kazuhiko Hirakawa,Hiroshi Yamaguc Book 2022 Springer Nature Singapore Pte Ltd.
描述.This book highlights recent advances in quantum control technologies with regard to hybrid quantum systems. It addresses the following topics: phonon engineering based on phononic crystals, carbon-based nano materials like graphene and nanotubes, Terahertz light technology for single-molecule and quantum dots, nuclear-spin-based metrology for semiconductor quantum systems, quantum anomalous Hall effect in magnetic topological insulators, chiral three-dimensional photonic crystals, and bio-inspired magnonic systems. Each topic, as a component in the framework of hybrid quantum systems, is concisely presented by experts at the forefront of the field. Accordingly, the book offers a valuable asset, and will help readers find advanced technologies and materials suitable for their purposes..
出版日期Book 2022
关键词Materials Science Topics in Quantum Hybrid Systems; Phononic Crystals; Strain Engineering in Graphene;
版次1
doihttps://doi.org/10.1007/978-981-19-1201-6
isbn_softcover978-981-19-1203-0
isbn_ebook978-981-19-1201-6Series ISSN 2364-9054 Series E-ISSN 2364-9062
issn_series 2364-9054
copyrightSpringer Nature Singapore Pte Ltd. 2022
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https://doi.org/10.1007/978-981-19-1201-6Materials Science Topics in Quantum Hybrid Systems; Phononic Crystals; Strain Engineering in Graphene;
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,Quantum Effects in Carbon Nanotubes: Effects of Curvature, Finite-Length and Topological Property,he energy gap in the metallic nanotubes and spin-orbit interaction. Finiteness of the nanotube length leads to the discretization of energy levels. Bulk-edge correspondence for edge states in the gap reveals another feature of the nanotubes as topological matters.
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