TY - JOUR
T1 - Topological Materials
T2 - Weyl Semimetals
AU - Yan, Binghai
AU - Felser, Claudia
N1 - We are grateful for Yan Sun, Shu-Chun Wu, Chandra Shekhar, Arnoald Frank, Elena Hassinger, Adolfo G. Grushin, Jens H. Bardarson, Marcus Schmidt, Michael Nicklas, Ajaya K. Nayak, Uli Zeitler, Jochen Wosnitza, Zhongkai Liu, Yulin Chen, and S.S.P. Parkin, for their close collaboration and for their important contributions reviewed in this paper. We acknowledge financial support from the Max Planck Society and the European Research Council Advanced Grant (291472 “Idea Heusler”).
PY - 2017
Y1 - 2017
N2 - Topological insulators and topological semimetals are both new classes of quantum materials, which are characterized by surface states induced by the topology of the bulk band structure. Topological Dirac or Weyl semimetals show linear dispersion around nodes, termed the Dirac or Weyl points, as the three-dimensional analog of graphene. We review the basic concepts and compare these topological states of matter from the materials perspective with a special focus on Weyl semimetals. The TaAs family is the ideal materials class to introduce the signatures of Weyl points in a pedagogical way, from Fermi arcs to the chiral magnetotransport properties, followed by hunting for the type-II Weyl semimetals in WTe2, MoTe2, and related compounds. Many materials are members of big families, and topological properties can be tuned. As one example, we introduce the multifunctional topological materials, Heusler compounds, in which both topological insulators and magnetic Weyl semimetals can be found. Instead of a comprehensive review, this article is expected to serve as a helpful introduction and summary by taking a snapshot of the quickly expanding field.
AB - Topological insulators and topological semimetals are both new classes of quantum materials, which are characterized by surface states induced by the topology of the bulk band structure. Topological Dirac or Weyl semimetals show linear dispersion around nodes, termed the Dirac or Weyl points, as the three-dimensional analog of graphene. We review the basic concepts and compare these topological states of matter from the materials perspective with a special focus on Weyl semimetals. The TaAs family is the ideal materials class to introduce the signatures of Weyl points in a pedagogical way, from Fermi arcs to the chiral magnetotransport properties, followed by hunting for the type-II Weyl semimetals in WTe2, MoTe2, and related compounds. Many materials are members of big families, and topological properties can be tuned. As one example, we introduce the multifunctional topological materials, Heusler compounds, in which both topological insulators and magnetic Weyl semimetals can be found. Instead of a comprehensive review, this article is expected to serve as a helpful introduction and summary by taking a snapshot of the quickly expanding field.
UR - https://www.scopus.com/pages/publications/85016749970
U2 - 10.1146/annurev-conmatphys-031016-025458
DO - 10.1146/annurev-conmatphys-031016-025458
M3 - Review article
SN - 1947-5454
VL - 8
SP - 337
EP - 354
JO - Annual Review of Condensed Matter Physics
JF - Annual Review of Condensed Matter Physics
ER -