| Literature DB >> 31801879 |
Toshiya Ideue1, Motoaki Hirayama2, Hiroaki Taiko3, Takanari Takahashi4, Masayuki Murase4, Takashi Miyake5, Shuichi Murakami6,7, Takao Sasagawa4, Yoshihiro Iwasa8,2,3.
Abstract
Recent progress in understanding the electronic band topology and emergent topological properties encourage us to reconsider the band structure of well-known materials including elemental substances. Controlling such a band topology by external field is of particular interest from both fundamental and technological viewpoints. Here we report possible signatures of the pressure-induced topological phase transition from a semiconductor to a Weyl semimetal in elemental tellurium probed by transport measurements. Pressure variation of the periods of Shubnikov-de Haas oscillations, as well as oscillation phases, shows an anomaly around the pressure theoretically predicted for topological phase transition. This behavior is consistent with the pressure-induced band deformation and resultant band-crossing effect. Moreover, effective cyclotron mass is reduced toward the critical pressure, potentially reflecting the emergence of massless linear dispersion. The present result paves the way for studying the electronic band topology in well-known compounds and topological phase transition by the external field.Entities:
Keywords: SdH oscillations; Weyl semimetal; tellurium; topological phase transition
Year: 2019 PMID: 31801879 PMCID: PMC6926023 DOI: 10.1073/pnas.1905524116
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205