English

Robust and Pristine Top ological Dirac Semimetal Phase in Pressured Two-Dimensional Black Phosphorous

Mesoscale and Nanoscale Physics 2017-09-13 v2

Abstract

Very recently, in spite of various efforts in searching for two dimensional topological Dirac semimetals (2D TDSMs) in phosphorene, there remains a lack of experimentally efficient way to activate such phase transition and the underlying mechanism for the topological phase acquisition is still controversial. Here, from first-principles calculations in combination with a band-sorting technique based on k.p theory, a layer-pressure topological phase diagram is obtained and some of the controversies are clarified. We demonstrate that, compared with tuning by external electric-fields, strain or doping by adsorption, hydrostatic pressure can be an experimentally more feasible way to activate the topological phase transition for 2D TDSM acquisition in phosphorene. More importantly, the resultant TDSM state is a pristine phase possessing a single pair of symmetry-protected Dirac cones right at the Fermi level, in startling contrast to the pressured bulk black phosphorous where only a carrier-mixed Dirac state can be obtained. We corroborate that the Dirac points are robust under external perturbation as long as the glide-plane symmetry preserves. Our findings provide a means to realize 2D pristine TDSM in a more achievable manner, which could be crucial in the realization of controllable TDSM states in phosphorene and related 2D materials.

Keywords

Cite

@article{arxiv.1702.06708,
  title  = {Robust and Pristine Top ological Dirac Semimetal Phase in Pressured Two-Dimensional Black Phosphorous},
  author = {Peng-Lai Gong and Bei Deng and Liang-Feng Huang and Liang Hu and Wei-Chao Wang and Da-Yong Liu and Xing-Qiang Shi and Zhi Zeng and Liang-Jian Zou},
  journal= {arXiv preprint arXiv:1702.06708},
  year   = {2017}
}

Comments

5 figures+Supplemental Material

R2 v1 2026-06-22T18:25:01.443Z