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Evidence for Two-dimensional Weyl Fermions in Air-Stable Monolayer PtTe$_{1.75}$

Mesoscale and Nanoscale Physics 2024-12-16 v2 Materials Science

Abstract

The Weyl semimetals represent a distinct category of topological materials wherein the low-energy excitations appear as the long-sought Weyl fermions. Exotic transport and optical properties are expected because of the chiral anomaly and linear energy-momentum dispersion. While three-dimensional Weyl semimetals have been successfully realized, the quest for their two-dimensional (2D) counterparts is ongoing. Here, we report the realization of 2D Weyl fermions in monolayer PtTe1.75_{1.75}, which has strong spin-orbit coupling and lacks inversion symmetry, by combined angle-resolved photoemission spectroscopy, scanning tunneling microscopy, second harmonic generation, X-ray photoelectron spectroscopy measurements, and first-principles calculations. The giant Rashba splitting and band inversion lead to the emergence of three pairs of critical Weyl cones. Moreover, monolayer PtTe1.75_{1.75} exhibits excellent chemical stability in ambient conditions, which is critical for future device applications. The discovery of 2D Weyl fermions in monolayer PtTe1.75_{1.75} opens up new possibilities for designing and fabricating novel spintronic devices.

Keywords

Cite

@article{arxiv.2407.20606,
  title  = {Evidence for Two-dimensional Weyl Fermions in Air-Stable Monolayer PtTe$_{1.75}$},
  author = {Zhihao Cai and Haijun Cao and Haohao Sheng and Xuegao Hu and Zhenyu Sun and Qiaoxiao Zhao and Jisong Gao and Shin-ichiro Ideta and Kenya Shimada and Jiawei Huang and Peng Cheng and Lan Chen and Yugui Yao and Sheng Meng and Kehui Wu and Zhijun Wang and Baojie Feng},
  journal= {arXiv preprint arXiv:2407.20606},
  year   = {2024}
}