Multiple Dirac cones and topological magnetism in honeycomb-monolayer transition metal trichalcogenides

Yusuke Sugita, Takashi Miyake, and Yukitoshi Motome
Phys. Rev. B 97, 035125 – Published 12 January 2018

Abstract

The discovery of monolayer graphene has initiated two fertile fields in condensed matter physics: Dirac semimetals and atomically thin layered materials. When these trends meet again in transition metal compounds, which possess spin and orbital degrees of freedom and strong electron correlations, more exotic phenomena are expected to emerge in the cross section of topological states of matter and Mott physics. Here, we show by using ab initio calculations that a monolayer form of transition metal trichalcogenides (TMTs), which has a honeycomb network of 4d and 5d transition metal cations, may exhibit multiple Dirac cones in the electronic structure of the half-filled eg orbitals. The Dirac cones are gapped by the spin-orbit coupling under the trigonal lattice distortion and, hence, can be tuned by tensile strain. Furthermore, we show that electron correlations and carrier doping turn the multiple Dirac semimetal into a topological ferromagnet with high Chern number. Our findings indicate that the honeycomb-monolayer TMTs provide a good playground for correlated Dirac electrons and topologically nontrivial magnetism.

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  • Received 16 June 2017
  • Revised 12 September 2017

DOI:https://doi.org/10.1103/PhysRevB.97.035125

©2018 American Physical Society

Physics Subject Headings (PhySH)

Condensed Matter, Materials & Applied Physics

Authors & Affiliations

Yusuke Sugita1, Takashi Miyake2, and Yukitoshi Motome1

  • 1Department of Applied Physics, University of Tokyo, Bunkyo, Tokyo 113-8656, Japan
  • 2CD-FMat, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba, Ibaraki 305-8568, Japan

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Vol. 97, Iss. 3 — 15 January 2018

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