Literature DB >> 31853084

Prediction and observation of an antiferromagnetic topological insulator.

M M Otrokov1,2,3,4, I I Klimovskikh5, H Bentmann6, D Estyunin5, A Zeugner7, Z S Aliev8,9, S Gaß10, A U B Wolter10, A V Koroleva5, A M Shikin5, M Blanco-Rey11,12, M Hoffmann13, I P Rusinov5,14, A Yu Vyazovskaya5,14, S V Eremeev5,14,15, Yu M Koroteev14,15, V M Kuznetsov14, F Freyse16, J Sánchez-Barriga16, I R Amiraslanov8, M B Babanly17, N T Mamedov8, N A Abdullayev8, V N Zverev18, A Alfonsov10, V Kataev10, B Büchner10,19, E F Schwier20, S Kumar20, A Kimura21, L Petaccia22, G Di Santo22, R C Vidal6, S Schatz6, K Kißner6, M Ünzelmann6, C H Min6, Simon Moser23, T R F Peixoto6, F Reinert6, A Ernst13,24, P M Echenique25,11,12, A Isaeva10,19, E V Chulkov26,27,28,29.   

Abstract

Magnetic topological insulators are narrow-gap semiconductor materials that combine non-trivial band topology and magnetic order1. Unlike their nonmagnetic counterparts, magnetic topological insulators may have some of the surfaces gapped, which enables a number of exotic phenomena that have potential applications in spintronics1, such as the quantum anomalous Hall effect2 and chiral Majorana fermions3. So far, magnetic topological insulators have only been created by means of doping nonmagnetic topological insulators with 3d transition-metal elements; however, such an approach leads to strongly inhomogeneous magnetic4 and electronic5 properties of these materials, restricting the observation of important effects to very low temperatures2,3. An intrinsic magnetic topological insulator-a stoichiometric well ordered magnetic compound-could be an ideal solution to these problems, but no such material has been observed so far. Here we predict by ab initio calculations and further confirm using various experimental techniques the realization of an antiferromagnetic topological insulator in the layered van der Waals compound MnBi2Te4. The antiferromagnetic ordering  that MnBi2Te4  shows makes it invariant with respect to the combination of the time-reversal and primitive-lattice translation symmetries, giving rise to a ℤ2 topological classification; ℤ2 = 1 for MnBi2Te4, confirming its topologically nontrivial nature. Our experiments indicate that the symmetry-breaking (0001) surface of MnBi2Te4 exhibits a large bandgap in the topological surface state. We expect this property to eventually enable the observation of a number of fundamental phenomena, among them quantized magnetoelectric coupling6-8 and axion electrodynamics9,10. Other exotic phenomena could become accessible at much higher temperatures than those reached so far, such as the quantum anomalous Hall effect2 and chiral Majorana fermions3.

Entities:  

Year:  2019        PMID: 31853084     DOI: 10.1038/s41586-019-1840-9

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  23 in total

1.  Band structure engineering in (Bi(1-x)Sb(x))(2)Te(3) ternary topological insulators.

Authors:  Jinsong Zhang; Cui-Zu Chang; Zuocheng Zhang; Jing Wen; Xiao Feng; Kang Li; Minhao Liu; Ke He; Lili Wang; Xi Chen; Qi-Kun Xue; Xucun Ma; Yayu Wang
Journal:  Nat Commun       Date:  2011-12-06       Impact factor: 14.919

2.  Massive Dirac fermion on the surface of a magnetically doped topological insulator.

Authors:  Y L Chen; J-H Chu; J G Analytis; Z K Liu; K Igarashi; H-H Kuo; X L Qi; S K Mo; R G Moore; D H Lu; M Hashimoto; T Sasagawa; S C Zhang; I R Fisher; Z Hussain; Z X Shen
Journal:  Science       Date:  2010-08-06       Impact factor: 47.728

3.  Magnetoelectric polarizability and axion electrodynamics in crystalline insulators.

Authors:  Andrew M Essin; Joel E Moore; David Vanderbilt
Journal:  Phys Rev Lett       Date:  2009-04-10       Impact factor: 9.161

4.  Quantized Faraday and Kerr rotation and axion electrodynamics of a 3D topological insulator.

Authors:  Liang Wu; M Salehi; N Koirala; J Moon; S Oh; N P Armitage
Journal:  Science       Date:  2016-12-02       Impact factor: 47.728

5.  A magnetic heterostructure of topological insulators as a candidate for an axion insulator.

Authors:  M Mogi; M Kawamura; R Yoshimi; A Tsukazaki; Y Kozuka; N Shirakawa; K S Takahashi; M Kawasaki; Y Tokura
Journal:  Nat Mater       Date:  2017-02-13       Impact factor: 43.841

6.  Discovery of intrinsic ferromagnetism in two-dimensional van der Waals crystals.

Authors:  Cheng Gong; Lin Li; Zhenglu Li; Huiwen Ji; Alex Stern; Yang Xia; Ting Cao; Wei Bao; Chenzhe Wang; Yuan Wang; Z Q Qiu; R J Cava; Steven G Louie; Jing Xia; Xiang Zhang
Journal:  Nature       Date:  2017-04-26       Impact factor: 49.962

7.  New Universal Type of Interface in the Magnetic Insulator/Topological Insulator Heterostructures.

Authors:  Sergey V Eremeev; Mikhail M Otrokov; Evgueni V Chulkov
Journal:  Nano Lett       Date:  2018-10-01       Impact factor: 11.189

8.  [Quality and safety through standardization].

Authors:  G W Becker
Journal:  Gesund Ing       Date:  1973-11

9.  Intrinsic magnetic topological insulators in van der Waals layered MnBi2Te4-family materials.

Authors:  Jiaheng Li; Yang Li; Shiqiao Du; Zun Wang; Bing-Lin Gu; Shou-Cheng Zhang; Ke He; Wenhui Duan; Yong Xu
Journal:  Sci Adv       Date:  2019-06-14       Impact factor: 14.136

10.  Visualization of superparamagnetic dynamics in magnetic topological insulators.

Authors:  Ella O Lachman; Andrea F Young; Anthony Richardella; Jo Cuppens; H R Naren; Yonathan Anahory; Alexander Y Meltzer; Abhinav Kandala; Susan Kempinger; Yuri Myasoedov; Martin E Huber; Nitin Samarth; Eli Zeldov
Journal:  Sci Adv       Date:  2015-11-06       Impact factor: 14.136

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  25 in total

1.  High-throughput calculations of magnetic topological materials.

Authors:  Yuanfeng Xu; Luis Elcoro; Zhi-Da Song; Benjamin J Wieder; M G Vergniory; Nicolas Regnault; Yulin Chen; Claudia Felser; B Andrei Bernevig
Journal:  Nature       Date:  2020-10-28       Impact factor: 49.962

2.  Magnetized topological insulator multilayers.

Authors:  Chao Lei; Shu Chen; Allan H MacDonald
Journal:  Proc Natl Acad Sci U S A       Date:  2020-10-19       Impact factor: 11.205

3.  Visualizing the interplay of Dirac mass gap and magnetism at nanoscale in intrinsic magnetic topological insulators.

Authors:  Mengke Liu; Chao Lei; Hyunsue Kim; Yanxing Li; Lisa Frammolino; Jiaqiang Yan; Allan H Macdonald; Chih-Kang Shih
Journal:  Proc Natl Acad Sci U S A       Date:  2022-10-10       Impact factor: 12.779

4.  Interplay between quantum anomalous Hall effect and magnetic skyrmions.

Authors:  Yang Li; Shengnan Xu; Jianfeng Wang; Chong Wang; Baishun Yang; Haiqing Lin; Wenhui Duan; Bing Huang
Journal:  Proc Natl Acad Sci U S A       Date:  2022-05-13       Impact factor: 12.779

Review 5.  Progress and prospects in magnetic topological materials.

Authors:  B Andrei Bernevig; Claudia Felser; Haim Beidenkopf
Journal:  Nature       Date:  2022-03-02       Impact factor: 69.504

6.  Layer Hall effect in a 2D topological axion antiferromagnet.

Authors:  Anyuan Gao; Yu-Fei Liu; Chaowei Hu; Jian-Xiang Qiu; Christian Tzschaschel; Barun Ghosh; Sheng-Chin Ho; Damien Bérubé; Rui Chen; Haipeng Sun; Zhaowei Zhang; Xin-Yue Zhang; Yu-Xuan Wang; Naizhou Wang; Zumeng Huang; Claudia Felser; Amit Agarwal; Thomas Ding; Hung-Ju Tien; Austin Akey; Jules Gardener; Bahadur Singh; Kenji Watanabe; Takashi Taniguchi; Kenneth S Burch; David C Bell; Brian B Zhou; Weibo Gao; Hai-Zhou Lu; Arun Bansil; Hsin Lin; Tay-Rong Chang; Liang Fu; Qiong Ma; Ni Ni; Su-Yang Xu
Journal:  Nature       Date:  2021-07-21       Impact factor: 49.962

7.  Intercalated architecture of MA2Z4 family layered van der Waals materials with emerging topological, magnetic and superconducting properties.

Authors:  Lei Wang; Yongpeng Shi; Mingfeng Liu; Ao Zhang; Yi-Lun Hong; Ronghan Li; Qiang Gao; Mingxing Chen; Wencai Ren; Hui-Ming Cheng; Yiyi Li; Xing-Qiu Chen
Journal:  Nat Commun       Date:  2021-04-21       Impact factor: 14.919

8.  High-throughput search for magnetic and topological order in transition metal oxides.

Authors:  Nathan C Frey; Matthew K Horton; Jason M Munro; Sinéad M Griffin; Kristin A Persson; Vivek B Shenoy
Journal:  Sci Adv       Date:  2020-12-09       Impact factor: 14.136

9.  Understanding Topological Insulators in Real Space.

Authors:  Angel Martín Pendás; Francisco Muñoz; Carlos Cardenas; Julia Contreras-García
Journal:  Molecules       Date:  2021-05-17       Impact factor: 4.411

10.  Controllable quantum point junction on the surface of an antiferromagnetic topological insulator.

Authors:  Nicodemos Varnava; Justin H Wilson; J H Pixley; David Vanderbilt
Journal:  Nat Commun       Date:  2021-06-28       Impact factor: 14.919

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