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  • Letter

Controllable Weyl nodes and Fermi arcs from Floquet engineering triple fermions

Shengpu Huang1, Fangyang Zhan1, Xianyong Ding1, Dong-Hui Xu1,*, Da-Shuai Ma1,2,†, and Rui Wang1,2,‡

  • 1Institute for Structure and Function, Department of Physics, and Chongqing Key Laboratory for Strongly Coupled Physics, Chongqing University, Chongqing 400044, People's Republic of China
  • 2Center of Quantum Materials and Devices, Chongqing University, Chongqing 400044, People's Republic of China

  • *Contact author: donghuixu@cqu.edu.cn
  • †Contact author: madason.xin@gmail.com
  • ‡Contact author: rcwang@cqu.edu.cn

Phys. Rev. B 110, L121118 – Published 23 September, 2024

DOI: https://doi.org/10.1103/PhysRevB.110.L121118

Abstract

Floquet engineering with periodic driving as a powerful tool for designing desirable topological states has been the subject of intense recent studies. Here, we present the application of Floquet engineering to investigate the evolution of topological triple fermions under irradiation of circularly polarized light (CPL), a phenomenon that currently remains a mystery. By using first-principles calculations and Floquet theorem, we demonstrate that WC-type TiO and its analogs are promising candidates for Floquet engineering of triple fermions. The symmetry analysis reveals that the electric field of CPL can break the specific symmetries, such as the time-reversal symmetry and its combination of spatial symmetries, inducing a transition to a flexibly controllable Weyl semimetallic phase. The survived spatial symmetry, controlled by light, guarantees that the Weyl nodes are located along the high-symmetry line or in high-symmetry planes in momentum space. Our findings focusing on Floquet engineering in realistic materials featured by triple fermions would facilitate both theoretical and experimental interest.

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