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商品コード: 9783319028491

MoS2: Materials, Physics, and Devices

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書名

MoS2: Materials, Physics, and Devices
著者・編者 Wang, Z.M.
出版社/発行元 Springer
発行年/月 2013年11月   
装丁 Hardcover
ページ数/巻数 291 ページ
ISBN 978-3-319-02849-1
発送予定 海外倉庫よりお取り寄せ 2-3週間以内に発送します

 

Desciption

 

This book reviews the structure and electronic, magnetic, and other properties of various MoS2 (Molybdenum disulfide) nanostructures, with coverage of synthesis, Valley polarization, spin physics, and other topics. MoS2 is an important, graphene-like layered nano-material that substantially extends the range of possible nanostructures and devices for nanofabrication. These materials have been widely researched in recent years, and have become an attractive topic for applications such as catalytic materials and devices based on field-effect transistors (FETs) and semiconductors.

Chapters from leading scientists worldwide create a bridge between MoS2 nanomaterials and fundamental physics in order to stimulate readers' interest in the potential of these novel materials for device applications. Since MoS2 nanostructures are expected to be increasingly important for future developments in energy and other electronic device applications, this book can be recommended for Physics and Materials Science and Engineering departments and as reference for researchers in the field.

 

Contents:

 

Progress on the Theoretical Study of Two-Dimensional MoS2 Monolayer and Nanoribbon
Electronic Structure of Exfoliated MoS2
Tunable Electronic and Dielectric Properties of Molybdenum Disulfide
Ab Initio Study on MoS2 and Its Family: Chemical Trend, Band Alignment, Alloying, and Gap Modulation
MoS2 : A First-Principles Perspective
Mechanical Properties and Electric Field Screening of Atomically Thin MoS2 Crystals
Insights into Vibrational and Electronic Properties of MoS2 Using Raman, Photoluminescence, and Transport Studies
Optical Characterization, Low-Temperature Photoluminescence, and Photocarrier Dynamics in MoS2
The Application of Nanostructure MoS2 Materials in Energy Storage and Conversion
Valley Polarization in Transition-Metal Dichalcogenides by Optical Pumping

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