论文标题

在声学高阶拓扑绝缘子的表面上观察出现的狄拉克物理学

Observation of emergent Dirac physics at the surfaces of acoustic higher-order topological insulators

论文作者

Meng, Fei, Lin, Zhi-Kang, Li, Weibai, Yan, Peiguang, Zheng, Yun, Jiang, Jian-Hua, Jia, Baohua, Huang, Xiaodong

论文摘要

使用三维(3D)声音晶体作为声学高阶拓扑绝缘子(HOTIS),我们在两个具有独特拓扑拓扑的声学晶体之间的接口处发现了二维(2D)表面状态,但具有相同的晶体对称性。我们发现狄拉克质量可以通过两个声音晶体的几何形状来调节。狄拉克质量的符号逆转揭示了表面拓扑转变,其中表面状态表现出零折射率行为。当表面状态被覆盖时,由于间隙表面状态的拓扑结构,一维(1D)铰链状态出现。我们通过实验确认零折射率行为和新兴的拓扑铰链状态。我们的研究揭示了一种多维轨道控制,该控制导致表面状态的非凡特性,并揭示了控制表面波的有趣拓扑机制。

Using three-dimensional (3D) sonic crystals as acoustic higher-order topological insulators (HOTIs), we discover two-dimensional (2D) surface states described by spin-1 Dirac equations at the interfaces between the two sonic crystals with distinct topology but the same crystalline symmetry. We find that the Dirac mass can be tuned by the geometry of the two sonic crystals. The sign reversal of the Dirac mass reveals a surface topological transition where the surface states exhibit zero refractive index behavior. When the surface states are gapped, one-dimensional (1D) hinge states emerge due to the topology of the gapped surface states. We confirm experimentally the zero refractive index behavior and the emergent topological hinge states. Our study reveals a multidimensional Wannier orbital control that leads to extraordinary properties of surface states and unveils an interesting topological mechanism for the control of surface waves.

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