Electrically tunable multiple Dirac cones in thin films of the (LaO)2(SbSe2)2 family of materials
Two-dimensional Dirac physics has aroused great interests in condensed matter physics ever since the discovery of graphene and topological insulators. The ability to control the properties of Dirac cones, such as bandgap and Fermi velocity, is essential for various new phenomena and the next-generat...
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Published in | Nature communications Vol. 6; no. 1; p. 8517 |
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Main Authors | , , , , , , |
Format | Journal Article |
Language | English |
Published |
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Nature Publishing Group UK
13.10.2015
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Abstract | Two-dimensional Dirac physics has aroused great interests in condensed matter physics ever since the discovery of graphene and topological insulators. The ability to control the properties of Dirac cones, such as bandgap and Fermi velocity, is essential for various new phenomena and the next-generation electronic devices. On the basis of first-principles calculations and an analytical effective model, we propose a new Dirac system with eight Dirac cones in thin films of the (LaO)
2
(SbSe
2
)
2
family of materials, which has the advantage in its tunability: the existence of gapless Dirac cones, their positions, Fermi velocities and anisotropy all can be controlled by an experimentally feasible electric field. We identify layer-dependent spin texture induced by spin–orbit coupling as the underlying physical reason for electrical tunability of this system. Furthermore, the electrically tunable quantum anomalous Hall effect with a high Chern number can be realized by introducing magnetization into this system.
The ability to electrically control Dirac cones is essential for exploring the physics and applications of Dirac materials. Here, the authors combine
ab initio
calculations and analytical models to predict that (LaO)
2
(SbSe
2
)
2
is a Dirac material with multiple electrically-tunable Dirac cones. |
---|---|
AbstractList | Two-dimensional Dirac physics has aroused great interests in condensed matter physics ever since the discovery of graphene and topological insulators. The ability to control the properties of Dirac cones, such as bandgap and Fermi velocity, is essential for various new phenomena and the next-generation electronic devices. On the basis of first-principles calculations and an analytical effective model, we propose a new Dirac system with eight Dirac cones in thin films of the (LaO)2(SbSe2)2 family of materials, which has the advantage in its tunability: the existence of gapless Dirac cones, their positions, Fermi velocities and anisotropy all can be controlled by an experimentally feasible electric field. We identify layer-dependent spin texture induced by spin-orbit coupling as the underlying physical reason for electrical tunability of this system. Furthermore, the electrically tunable quantum anomalous Hall effect with a high Chern number can be realized by introducing magnetization into this system. Two-dimensional Dirac physics has aroused great interests in condensed matter physics ever since the discovery of graphene and topological insulators. The ability to control the properties of Dirac cones, such as bandgap and Fermi velocity, is essential for various new phenomena and the next-generation electronic devices. On the basis of first-principles calculations and an analytical effective model, we propose a new Dirac system with eight Dirac cones in thin films of the (LaO) 2 (SbSe 2 ) 2 family of materials, which has the advantage in its tunability: the existence of gapless Dirac cones, their positions, Fermi velocities and anisotropy all can be controlled by an experimentally feasible electric field. We identify layer-dependent spin texture induced by spin–orbit coupling as the underlying physical reason for electrical tunability of this system. Furthermore, the electrically tunable quantum anomalous Hall effect with a high Chern number can be realized by introducing magnetization into this system. The ability to electrically control Dirac cones is essential for exploring the physics and applications of Dirac materials. Here, the authors combine ab initio calculations and analytical models to predict that (LaO) 2 (SbSe 2 ) 2 is a Dirac material with multiple electrically-tunable Dirac cones. |
ArticleNumber | 8517 |
Author | Zhang, Rui-Xing Duan, Wen-Hui Liu, Chao-Xing Dong, Xiao-Yu Zhu, Bang-Fen Wang, Jian-Feng Sofo, Jorge O. |
Author_xml | – sequence: 1 givenname: Xiao-Yu surname: Dong fullname: Dong, Xiao-Yu organization: Department of Physics and State Key Laboratory of Low-Dimensional Quantum Physics, Tsinghua University, Department of Physics, The Pennsylvania State University, University Park, State College, Pennsylvania 16802-6300, USA – sequence: 2 givenname: Jian-Feng surname: Wang fullname: Wang, Jian-Feng organization: Department of Physics and State Key Laboratory of Low-Dimensional Quantum Physics, Tsinghua University, Department of Physics, The Pennsylvania State University, University Park, State College, Pennsylvania 16802-6300, USA – sequence: 3 givenname: Rui-Xing surname: Zhang fullname: Zhang, Rui-Xing organization: Department of Physics, The Pennsylvania State University, University Park, State College, Pennsylvania 16802-6300, USA – sequence: 4 givenname: Wen-Hui surname: Duan fullname: Duan, Wen-Hui organization: Department of Physics and State Key Laboratory of Low-Dimensional Quantum Physics, Tsinghua University – sequence: 5 givenname: Bang-Fen surname: Zhu fullname: Zhu, Bang-Fen organization: Department of Physics and State Key Laboratory of Low-Dimensional Quantum Physics, Tsinghua University – sequence: 6 givenname: Jorge O. surname: Sofo fullname: Sofo, Jorge O. organization: Department of Physics, The Pennsylvania State University, University Park, State College, Pennsylvania 16802-6300, USA – sequence: 7 givenname: Chao-Xing surname: Liu fullname: Liu, Chao-Xing email: cxl56@psu.edu organization: Department of Physics, The Pennsylvania State University, University Park, State College, Pennsylvania 16802-6300, USA |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/26459498$$D View this record in MEDLINE/PubMed |
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Title | Electrically tunable multiple Dirac cones in thin films of the (LaO)2(SbSe2)2 family of materials |
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