1] State Key Laboratory of Optoelectronic Materials and Technologies and School of Physics and Engineering, Sun Yat-Sen University, Guangzhou 510275, China [2] Department of Physics and the Institute for Advanced Study, The Hong Kong University of Science and Technology, Hong Kong, China.
State Key Laboratory of Optoelectronic Materials and Technologies and School of Physics and Engineering, Sun Yat-Sen University, Guangzhou 510275, China.
Nat Commun. 2014 Dec 17;5:5782. doi: 10.1038/ncomms6782.
Photonic analogue of topological insulator was recently predicted by arranging ε/μ (permittivity/permeability)-matched bianisotropic metamaterials into two-dimensional superlattices. However, the experimental observation of such photonic topological insulator is challenging as bianisotropic metamaterial is usually highly dispersive, so that the ε/μ-matching condition can only be satisfied in a narrow frequency range. Here we experimentally realize a photonic topological insulator by embedding non-bianisotropic and non-resonant metacrystal into a waveguide. The cross coupling between transverse electric and transverse magnetic modes exists in metacrystal waveguide. Using this approach, the ε/μ-matching condition is satisfied in a broad frequency range which facilitates experimental observation. The topologically non-trivial bandgap is confirmed by experimentally measured transmission spectra and calculated non-zero spin Chern numbers. Gapless spin-filtered edge states are demonstrated experimentally by measuring the magnitude and phase of the fields. The transport robustness of the edge states is also observed when an obstacle was introduced near the edge.
最近,通过将 ε/μ(介电常数/磁导率)匹配的双各向异性超材料排列成二维超晶格,预测出了光子拓扑绝缘体。然而,由于双各向异性超材料通常具有很高的色散性,因此这种光子拓扑绝缘体的实验观察具有挑战性,只有在很窄的频率范围内才能满足 ε/μ 匹配条件。在这里,我们通过将非各向异性和非共振超晶格嵌入波导中,实验上实现了一种光子拓扑绝缘体。在超晶格波导中存在横向电场和横向磁场模式之间的交叉耦合。通过这种方法,在较宽的频率范围内满足 ε/μ 匹配条件,这有利于实验观察。通过实验测量的传输谱和计算的非零自旋陈数,证实了拓扑非平庸带隙。通过测量场的幅度和相位,实验上演示了无带隙的自旋滤波边缘态。当在边缘附近引入障碍物时,还观察到了边缘态的传输鲁棒性。