Back to Search Start Over

Observation of Unpinned Two-Dimensional Dirac States in Antimony Single Layers with Phosphorene Structure

Authors :
Lu, Qiangsheng
Snyder, Matthew
Chen, Kyle Y.
Zhang, Xiaoqian
Cook, Jacob
Nguyen, Duy Tung
Reddy, P. V. Sreenivasa
Chang, Tay-Rong
Kowalczyk, Pawel J.
Brown, Simon A.
Chiang, Tai-Chang
Yang, Shengyuan A.
Bian, Guang
Source :
Nature Communications 13:4603 (2022)
Publication Year :
2021

Abstract

The discovery of graphene has stimulated enormous interest in two-dimensional (2D) electron gas with linear band structure. 2D Dirac materials possess many intriguing physical properties such as high carrier mobility and zero-energy Landau level thanks to the relativistic dispersion and chiral spin/pseudospin texture. 2D Dirac states discovered so far are exclusively pinned at high-symmetry points of the Brillouin zone, for example, surface Dirac states at $\overline{\Gamma}$ in topological insulators Bi$_2$Se(Te)$_3$ and Dirac cones at $K$ and $K'$ in graphene. In this work, we report the realization of 2D Dirac states at generic $k$-points in antimony atomic layers with phosphorene structure ($i.e.$ $\alpha$-antimonene). The unpinned nature enables versatile ways to control the locations of the Dirac points in momentum space. In addition, dispersions around the unpinned Dirac points exhibit intrinsically anisotropic behaviors due to the reduced symmetry of generic momentum points. These properties make the $\alpha$-antimonene films a promising platform for exploring interesting physics in unpinned 2D Dirac fermions that are distinct from the conventional Dirac states in graphene.<br />Comment: 5 figures

Details

Database :
arXiv
Journal :
Nature Communications 13:4603 (2022)
Publication Type :
Report
Accession number :
edsarx.2110.04907
Document Type :
Working Paper
Full Text :
https://doi.org/10.1038/s41467-022-32327-8