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Higher‐Order Topological States in Surface‐Wave Photonic Crystals

机译:表面波光子晶体中的高阶拓扑状态

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摘要

Photonic topological states have revolutionized the understanding of the propagation and scattering of light. The recent discovery of higher‐order photonic topological insulators opens an emergent horizon for 0D topological corner states. However, the previous realizations of higher‐order topological insulators in electromagnetic‐wave systems suffer from either a limited operational frequency range due to the lumped components involved or a bulky structure with a large footprint, which are unfavorable for achieving compact photonic devices. To overcome these limitations, a planar surface‐wave photonic crystal realization of 2D higher‐order topological insulators is hereby demonstrated experimentally. The surface‐wave photonic crystals exhibit a very large bulk bandgap (a bandwidth of 28%) due to multiple Bragg scatterings and host 1D gapped edge states described by massive Dirac equations. The topology of those higher‐dimensional photonic bands leads to the emergence of in‐gap 0D corner states, which provide a route toward robust cavity modes for scalable compact photonic devices.
机译:光子拓扑状态彻底改变了对光传播和散射的理解。高阶光子拓扑绝缘体的最新发现为0D拓扑角状态开辟了新的视野。但是,电磁波系统中更高阶拓扑绝缘体的先前实现由于涉及的集总组件或具有大占位面积的笨重结构而受限于工作频率范围,这不利于实现紧凑的光子器件。为了克服这些限制,通过实验证明了二维高阶拓扑绝缘体的平面表面波光子晶体实现。由于多重布拉格散射和大量狄拉克方程描述的主体一维带隙边缘状态,表面波光子晶体显示出非常大的体隙(带宽为28%)。这些高维光子带的拓扑结构导致间隙内0D拐角状态的出现,这为可扩展的紧凑型光子设备提供了通往鲁棒腔模的途径。

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