Acoustic higher-order topological insulator on a kagome lattice

拓扑绝缘体 拓扑(电路) 物理 无缝回放 格子(音乐) 拓扑序 对称保护拓扑序 拓扑简并 极化(电化学) 凝聚态物理 绝缘体(电) 物理中的拓扑熵 拓扑量子数 四极 表面状态 Wannier函数
作者
Haoran Xue,Yahui Yang,Fei Gao,Y. D. Chong,Baile Zhang
出处
期刊:Nature Materials [Nature Portfolio]
卷期号:18 (2): 108-112 被引量:825
标识
DOI:10.1038/s41563-018-0251-x
摘要

Higher-order topological insulators1–5 are a family of recently predicted topological phases of matter that obey an extended topological bulk–boundary correspondence principle. For example, a two-dimensional (2D) second-order topological insulator does not exhibit gapless one-dimensional (1D) topological edge states, like a standard 2D topological insulator, but instead has topologically protected zero-dimensional (0D) corner states. The first prediction of a second-order topological insulator1, based on quantized quadrupole polarization, was demonstrated in classical mechanical6 and electromagnetic7,8 metamaterials. Here we experimentally realize a second-order topological insulator in an acoustic metamaterial, based on a ‘breathing’ kagome lattice9 that has zero quadrupole polarization but a non-trivial bulk topology characterized by quantized Wannier centres2,9,10. Unlike previous higher-order topological insulator realizations, the corner states depend not only on the bulk topology but also on the corner shape; we show experimentally that they exist at acute-angled corners of the kagome lattice, but not at obtuse-angled corners. This shape dependence allows corner states to act as topologically protected but reconfigurable local resonances. A second-order topological insulator in an acoustical metamaterial with a breathing kagome lattice, supporting one-dimensional edge states and zero-dimensional corner states is demonstrated.
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