Lu Jinlong, Wirth Konstantin G, Gao Wenlong, Heßler Andreas, Sain Basudeb, Taubner Thomas, Zentgraf Thomas
Department of Physics, Paderborn University, Warburger Str. 100, 33098 Paderborn, Germany.
I. Institute of Physics (IA), RWTH Aachen University, 52074 Aachen, Germany.
Sci Adv. 2021 Dec 3;7(49):eabl3903. doi: 10.1126/sciadv.abl3903. Epub 2021 Dec 1.
Topological photonic crystals (TPhCs) provide robust manipulation of light with built-in immunity to fabrication tolerances and disorder. Recently, it was shown that TPhCs based on weak topology with a dislocation inherit this robustness and further host topologically protected lower-dimensional localized modes. However, TPhCs with weak topology at optical frequencies have not been demonstrated so far. Here, we use scattering-type scanning near-field optical microscopy to verify mid-bandgap zero-dimensional light localization close to 100 THz in a TPhC with nontrivial Zak phase and an edge dislocation. We show that because of the weak topology, differently extended dislocation centers induce similarly strong light localization. The experimental results are supported by full-field simulations. Along with the underlying fundamental physics, our results lay a foundation for the application of TPhCs based on weak topology in active topological nanophotonics, and nonlinear and quantum optic integrated devices because of their strong and robust light localization.
拓扑光子晶体(TPhCs)能够对光进行稳健操控,且对制造公差和无序具有内在免疫力。最近研究表明,具有位错的基于弱拓扑的TPhCs继承了这种稳健性,并进一步拥有拓扑保护的低维局域模式。然而,迄今为止尚未证明在光频下具有弱拓扑的TPhCs。在此,我们使用散射型扫描近场光学显微镜来验证在具有非平凡Zak相和边缘位错的TPhC中接近100太赫兹的带隙中间零维光局域化。我们表明,由于弱拓扑,不同扩展的位错中心会诱导出类似强度的光局域化。实验结果得到了全场模拟的支持。连同其背后的基础物理,我们的结果为基于弱拓扑的TPhCs在有源拓扑纳米光子学以及非线性和量子光学集成器件中的应用奠定了基础,因为它们具有强大且稳健的光局域化特性。