Spin-filtered edge states with an electrically tunable gap in a two-dimensional topological crystalline insulator

Three-dimensional topological crystalline insulators were recently predicted and observed in the SnTe class of IV-VI semiconductors, which host metallic surface states protected by crystal symmetries. In this work, we study thin films of these materials and expose their potential for device applicat...

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Main Authors: Liu, Junwei (Contributor), Hsieh, Timothy Hwa-wei (Contributor), Wei, Peng (Contributor), Duan, Wenhui (Author), Moodera, Jagadeesh (Contributor), Fu, Liang (Contributor)
Other Authors: Massachusetts Institute of Technology. Department of Physics (Contributor)
Format: Article
Language:English
Published: Nature Publishing Group, 2014-07-24T19:55:31Z.
Subjects:
Online Access:Get fulltext
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100 1 0 |a Liu, Junwei  |e author 
100 1 0 |a Massachusetts Institute of Technology. Department of Physics  |e contributor 
100 1 0 |a Liu, Junwei  |e contributor 
100 1 0 |a Hsieh, Timothy Hwa-wei  |e contributor 
100 1 0 |a Wei, Peng  |e contributor 
100 1 0 |a Moodera, Jagadeesh  |e contributor 
100 1 0 |a Fu, Liang  |e contributor 
700 1 0 |a Hsieh, Timothy Hwa-wei  |e author 
700 1 0 |a Wei, Peng  |e author 
700 1 0 |a Duan, Wenhui  |e author 
700 1 0 |a Moodera, Jagadeesh  |e author 
700 1 0 |a Fu, Liang  |e author 
245 0 0 |a Spin-filtered edge states with an electrically tunable gap in a two-dimensional topological crystalline insulator 
260 |b Nature Publishing Group,   |c 2014-07-24T19:55:31Z. 
856 |z Get fulltext  |u http://hdl.handle.net/1721.1/88495 
520 |a Three-dimensional topological crystalline insulators were recently predicted and observed in the SnTe class of IV-VI semiconductors, which host metallic surface states protected by crystal symmetries. In this work, we study thin films of these materials and expose their potential for device applications. We demonstrate that thin films of SnTe and Pb1−xSnxSe(Te) grown along the (001) direction are topologically non-trivial in a wide range of film thickness and carry conducting spin-filtered edge states that are protected by the (001) mirror symmetry through a topological invariant. Application of an electric field perpendicular to the film will break the mirror symmetry and generate a bandgap in these edge states. This functionality motivates us to propose a topological transistor device in which charge and spin transport are maximally entangled and simultaneously controlled by an electric field. The high on/off operation speed and coupling of spin and charge in such a device may lead to electronic and spintronic applications for topological crystalline insulators. 
520 |a United States. Dept. of Energy (Office of Basic Energy Sciences, Division of Materials Sciences and Engineering, Award DE-SC0010526)0006423) 
520 |a National Science Foundation (U.S.) (Graduate research fellowship No. 0645960) 
520 |a China. Ministry of Science and Technology (Grant No. 2011CB921901) 
520 |a China. Ministry of Science and Technology (Grant No. 2011CB606405) 
520 |a National Natural Science Foundation (China) (Grant No. 11074139) 
520 |a National Science Foundation (U.S.) (MIT MRSEC Program Award No. DMR-0819762) 
520 |a National Science Foundation (U.S.) (NSF DMR grant 1207469) 
520 |a United States. Office of Naval Research (ONR grant N00014-13-1-0301) 
546 |a en_US 
655 7 |a Article 
773 |t Nature Materials