English

Observation of topological switch between Weyl semimetal and third-order topological insulator phases

Mesoscale and Nanoscale Physics 2025-08-28 v1 Optics

Abstract

Weyl semimetals and higher-order topological insulators represent two fundamental yet distinct classes of topological matter. While both have been extensively studied in classical-wave systems, their coexistence and controllable transition within a single platform remain largely unexplored. Meanwhile, implementing three-dimensional spin-orbit couplings, which is crucial for realizing a broad class of higher-dimensional topological phases, continues to pose significant experimental challenges. Here, we experimentally realize three-dimensional spin-orbit couplings and demonstrate that tuning the dimerized spin-orbit coupling strength enables both the coexistence of and a controllable switch between Weyl semimetal and third-order topological insulator phases. By engineering a three-dimensional circuit metamaterial, we synthesize the required spin-orbit interactions and observe hallmark signatures of both phases: frequency spectroscopy reveals the Fermi arcs, while local density of states measurements identify the topological corner modes. Interestingly, the corner mode degeneracy doubles compared to that in the canonical Benalcazar-Bernevig-Hughes model, signaling an enriched topological structure. Our study establishes a fundamental connection between two paradigmatic topological phases and paves the way for further exploring spin-orbit-coupling induced exotic higher-dimensional topological phases.

Keywords

Cite

@article{arxiv.2508.19531,
  title  = {Observation of topological switch between Weyl semimetal and third-order topological insulator phases},
  author = {Yu-Hong Han and Yi Li and Feng Mei and Liantuan Xiao and Suotang Jia},
  journal= {arXiv preprint arXiv:2508.19531},
  year   = {2025}
}

Comments

17 pages, 7 figures,