• R. C. Vidal
  • H. Bentmann
  • T. R.F. Peixoto
  • A. Zeugner
  • S. Moser
  • C. H. Min
  • S. Schatz
  • K. Kißner
  • M. Ünzelmann
  • C. I. Fornari
  • H. B. Vasili
  • M. Valvidares
  • K. Sakamoto
  • D. Mondal
  • J. Fujii
  • I. Vobornik
  • S. Jung
  • C. Cacho
  • T. K. Kim
  • R. J. Koch
  • C. Jozwiak
  • A. Bostwick
  • J. D. Denlinger
  • E. Rotenberg
  • J. Buck
  • M. Hoesch
  • F. Diekmann
  • S. Rohlf
  • M. Kalläne
  • K. Rossnagel
  • E. V. Chulkov
  • M. Ruck
  • A. Isaeva
  • F. Reinert

The layered van der Waals antiferromagnet MnBi2Te4 has been predicted to combine the band ordering of archetypical topological insulators such as Bi2Te3 with the magnetism of Mn, making this material a viable candidate for the realization of various magnetic topological states. We have systematically investigated the surface electronic structure of MnBi2Te4(0001) single crystals by use of spin- and angle-resolved photoelectron spectroscopy experiments. In line with theoretical predictions, the results reveal a surface state in the bulk band gap and they provide evidence for the influence of exchange interaction and spin-orbit coupling on the surface electronic structure.

Original languageEnglish
Article number121104
Number of pages6
JournalPhysical Review B
Volume100
Issue number12
DOIs
StatePublished - 11 Sep 2019

    Research areas

  • Acoustic generators, antiferromagnetism, Crystal Structure, electronic structure, Energy gap, Manganese compounds, photoelectron spectroscopy, Single crystals, Spin polarization, Surface states, Tellurium compounds, Van der Waals forces, MAGNETIC-MOMENTS, HETEROSTRUCTURE, TOPOLOGICAL-INSULATOR

    Scopus subject areas

  • Electronic, Optical and Magnetic Materials
  • Condensed Matter Physics

ID: 49498064