Realization of a two-dimensional Weyl semimetal and topological Fermi strings

Author:

Lu Qiangsheng,Reddy P. V. SreenivasaORCID,Jeon HoyeonORCID,Mazza Alessandro R.,Brahlek MatthewORCID,Wu WeikangORCID,Yang Shengyuan A.,Cook Jacob,Conner Clayton,Zhang Xiaoqian,Chakraborty Amarnath,Yao Yueh-Ting,Tien Hung-JuORCID,Tseng Chun-Han,Yang Po-Yuan,Lien Shang-Wei,Lin HsinORCID,Chiang Tai-ChangORCID,Vignale GiovanniORCID,Li An-PingORCID,Chang Tay-RongORCID,Moore Rob G.ORCID,Bian GuangORCID

Abstract

AbstractA two-dimensional (2D) Weyl semimetal, akin to a spinful variant of graphene, represents a topological matter characterized by Weyl fermion-like quasiparticles in low dimensions. The spinful linear band structure in two dimensions gives rise to distinctive topological properties, accompanied by the emergence of Fermi string edge states. We report the experimental realization of a 2D Weyl semimetal, bismuthene monolayer grown on SnS(Se) substrates. Using spin and angle-resolved photoemission and scanning tunneling spectroscopies, we directly observe spin-polarized Weyl cones, Weyl nodes, and Fermi strings, providing consistent evidence of their inherent topological characteristics. Our work opens the door for the experimental study of Weyl fermions in low-dimensional materials.

Funder

U.S. Department of Energy

Gordon and Betty Moore Foundation

Publisher

Springer Science and Business Media LLC

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