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Orbital Complexity in Intrinsic Magnetic Topological Insulators MnBi4Te7 and MnBi6Te10.

Authors :
Vidal, R. C.
Bentmann, H.
Facio, J. I.
Heider, T.
Kagerer, P.
Fornari, C. I.
Peixoto, T. R. F.
Figgemeier, T.
Jung, S.
Cacho, C.
Büchner, B.
Brink, J. van den
Schneider, C. M.
Plucinski, L.
Schwier, E. F.
Shimada, K.
Richter, M.
Isaeva, A.
Reinert, F.
Source :
Physical Review Letters. 4/30/2021, Vol. 126 Issue 17, p1-1. 1p.
Publication Year :
2021

Abstract

Using angle-resolved photoelectron spectroscopy (ARPES), we investigate the surface electronic structure of the magnetic van der Waals compounds MnBi4Te7 and MnBi6Te10, the n=1 and 2 members of a modular (Bi2Te3)n(MnBi2Te4) series, which have attracted recent interest as intrinsic magnetic topological insulators. Combining circular dichroic, spin-resolved and photon-energy-dependent ARPES measurements with calculations based on density functional theory, we unveil complex momentum-dependent orbital and spin textures in the surface electronic structure and disentangle topological from trivial surface bands. We find that the Dirac-cone dispersion of the topologial surface state is strongly perturbed by hybridization with valence-band states for Bi2Te3-terminated surfaces but remains preserved for MnBi2Te4-terminated surfaces. Our results firmly establish the topologically nontrivial nature of these magnetic van der Waals materials and indicate that the possibility of realizing a quantized anomalous Hall conductivity depends on surface termination. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00319007
Volume :
126
Issue :
17
Database :
Academic Search Index
Journal :
Physical Review Letters
Publication Type :
Academic Journal
Accession number :
150160086
Full Text :
https://doi.org/10.1103/PhysRevLett.126.176403