Hong Yu-Liang, Tang Gong-Hui, Peng Ru-Wen, Fan Ren-Hao, Ma Zhong-Li, Wang Zheng, Jiang Yue, Chen Le-Di, Wang Mu
Opt Express. 2022 Apr 25;30(9):14839-14850. doi: 10.1364/OE.454750.
Topological photonics offers the possibility of robust transport and efficiency enhancement of information processing. Terahertz (THz) devices, such as waveguides and beam splitters, are prone to reflection loss owing to their sensitivity to defects and lack of robustness against sharp corners. Thus, it is a challenge to reduce backscattering loss at THz frequencies. In this work, we constructed THz photonic topological insulators and experimentally demonstrated robust, topologically protected valley transport in THz photonic crystals. The THz valley photonic crystal (VPC) was composed of metallic cylinders situated in a triangular lattice. By tuning the relevant location of metallic cylinders in the unit cell, mirror symmetry was broken, and the degenerated states were lifted at the K and K' valleys in the band structure. Consequently, a bandgap of THz VPC was opened, and a nontrivial band structure was created. Based on the calculated band structure, THz field distributions, and valley Berry curvature, we verified the topological phase transition in such type of THz photonic crystals. Further, we showed the emergence of valley-polarized topological edge states between the topologically distinct VPCs. The angle-resolved transmittance measurements identified the bulk bandgap in the band structure of the VPC. The measured time-domain spectra demonstrated the topological transport of valley edge states between distinct VPCs and their robustness against bending and defects. Furthermore, experiments conducted on a topological multi-channel intersectional device revealed the valley-polarized characteristic of the topological edge states. This work provides a unique approach to reduce backscattering loss at the THz regime. It also demonstrates potential high-efficiency THz functional devices such as topologically protected beam splitters, low-loss waveguides, and robust delay lines.
拓扑光子学为信息处理的稳健传输和效率提升提供了可能性。太赫兹(THz)器件,如波导和分束器,由于对缺陷敏感且对尖角缺乏稳健性,容易出现反射损耗。因此,降低太赫兹频率下的背向散射损耗是一项挑战。在这项工作中,我们构建了太赫兹光子拓扑绝缘体,并通过实验证明了太赫兹光子晶体中稳健的、拓扑保护的谷传输。太赫兹谷光子晶体(VPC)由位于三角晶格中的金属圆柱体组成。通过调整晶胞中金属圆柱体的相关位置,打破了镜面对称性,能带结构中的K和K'谷处的简并态被消除。因此,打开了太赫兹VPC的带隙,并创建了非平凡的能带结构。基于计算出的能带结构、太赫兹场分布和谷贝里曲率,我们验证了此类太赫兹光子晶体中的拓扑相变。此外,我们展示了在拓扑不同的VPC之间出现的谷极化拓扑边缘态。角分辨透射率测量确定了VPC能带结构中的体带隙。测量的时域光谱证明了不同VPC之间谷边缘态的拓扑传输及其对弯曲和缺陷的稳健性。此外,在拓扑多通道交叉器件上进行的实验揭示了拓扑边缘态的谷极化特性。这项工作提供了一种独特的方法来降低太赫兹频段的背向散射损耗。它还展示了潜在的高效太赫兹功能器件,如拓扑保护分束器、低损耗波导和稳健延迟线。