Observation of second-order topological insulators in sonic crystals
Xiujuan Zhang, Hai-Xiao Wang, Zhi-Kang Lin, Yuan Tian, Biye Xie,, Ming-Hui Lu, Yan-Feng Chen, Jian-Hua Jiang

TL;DR
This paper reports the theoretical prediction and experimental demonstration of second-order topological insulators in 2D sonic crystals, revealing gapped edge states and in-gap corner states, advancing topological control in acoustic systems.
Contribution
It introduces the first experimental observation of acoustic second-order topological insulators in sonic crystals beyond tight-binding models.
Findings
Observation of gapped edge states in 2D sonic crystals
Detection of degenerate in-gap corner states
Topological transitions achieved by tuning meta-atom angles
Abstract
Topological insulators with unique gapless edge states have revolutionized the understanding of electronic properties in solid materials. These gapless edge states are dictated by the topological invariants associated with the quantization of generalized Berry phases of the bulk energy bands through the bulk-edge correspondence, a paradigm that can also be extended to acoustic and photonic systems. Recently, high-order topological insulators (HOTIs) are proposed and observed, where the bulk topological invariants result in gapped edge states and in-gap corner or hinge states, going beyond the conventional bulk-edge correspondence. However, the existing studies on HOTIs are restricted to tight-binding models which cannot describe the energy bands of conventional sonic/photonic crystals that are due to multiple Bragg scatterings. Here, we report theoretical prediction and experimental…
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Taxonomy
TopicsTopological Materials and Phenomena · Advanced Condensed Matter Physics · Graphene research and applications
