Communications Physics (Sep 2024)

Experimental probe of point gap topology from non-Hermitian Fermi-arcs

  • Riyi Zheng,
  • Jing Lin,
  • Jialuo Liang,
  • Kun Ding,
  • Jiuyang Lu,
  • Weiyin Deng,
  • Manzhu Ke,
  • Xueqin Huang,
  • Zhengyou Liu

DOI
https://doi.org/10.1038/s42005-024-01789-1
Journal volume & issue
Vol. 7, no. 1
pp. 1 – 9

Abstract

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Abstract The gap in spectra of a physical system is fundamental in physics, while gap topology further restricts possible occurrent gaps of topological boundary states. The emergence of non-Hermiticity unveils a unique gap type known as the point gap, which forecasts the wavefunction localization, known as the non-Hermitian skin effect. Therefore, experimentally identifying the point gap in the complex frequency plane through a real operating frequency can become a tool for the systematic investigation of skin effects. Here, we utilize a Weyl phononic crystal to demonstrate that the point gap constituted by bulk and Fermi-arc surface states can be observed experimentally by a real-space field mapping technique. The identified point gaps forecast various skin effects and their evolutions. We further experimentally demonstrate the hinge skin effect in a parallelogram structure. Our work provides a feasible recipe to explore point gap topology experimentally in a variety of systems and certainly stimulates the research on skin effects in three-dimensional systems.