论文标题
在电信波长处直接量化对称保护的光子边缘状态
Direct quantification of topological protection in symmetry-protected photonic edge states at telecom wavelengths
论文作者
论文摘要
基于量身定制的光子晶体(PHC)的拓扑片上光子学,由于其具有稳健的经典和量子信息的稳健单向运输的承诺,最近对Quantum Valley Hall效应的效果最近引起了广泛的兴趣。我们使用相位分辨的近场光学显微镜进行了拓扑光子边缘特征状态及其传输特性的直接定量评估。实验可视化这些模式的详细次波长结构,这些结构沿两个拓扑非平凡的镜像对称晶格在界面沿界面传播,这使我们能够绘制它们的分散关系,并区分几个高阶Bloch谐波的贡献。通过其相速度定义的前向和向后传播模式的选择性探测可以直接量化拓扑鲁棒性。与常规的PHC波导相比,研究近场传播的近场传播可以在片上光子系统中提取上限以拓扑保护。我们发现,与常规的PHC波导相比,受保护的边缘状态比两个数量级更强。拓扑鲁棒性的直接实验量化构成了朝着拓扑保护指导的集成光子学指导的关键步骤,从而允许前所未有的无错误的光子量子网络。
Topological on-chip photonics based on tailored photonic crystals (PhC) that emulate quantum valley Hall effects has recently gained widespread interest due to its promise of robust unidirectional transport of classical and quantum information. We present a direct quantitative evaluation of topological photonic edge eigenstates and their transport properties in the telecom wavelength range using phase-resolved near-field optical microscopy. Experimentally visualizing the detailed sub-wavelength structure of these modes propagating along the interface between two topologically non-trivial mirror-symmetric lattices allows us to map their dispersion relation and differentiate between the contributions of several higher-order Bloch harmonics. Selective probing of forward and backward propagating modes as defined by their phase velocities enables a direct quantification of topological robustness. Studying near-field propagation in controlled defects allows to extract upper limits to topological protection in on-chip photonic systems in comparison to conventional PhC waveguides. We find that protected edge states are two orders of magnitude more robust as compared to conventional PhC waveguides. This direct experimental quantification of topological robustness comprises a crucial step towards the application of topologically protected guiding in integrated photonics, allowing for unprecedented error-free photonic quantum networks.