Muis Daniel, Li Yandong, Barczyk René, Arora Sonakshi, Kuipers L, Shvets Gennady, Verhagen Ewold
Kavli Institute of Nanoscience, Department of Quantum Nanoscience, Delft University of Technology, 2628 CJ Delft, Netherlands.
School of Applied and Engineering Physics, Cornell University, Ithaca, NY 14853, USA.
Sci Adv. 2025 Apr 18;11(16):eadr9569. doi: 10.1126/sciadv.adr9569.
Localized optical field enhancement enables strong light-matter interactions necessary for efficient manipulation and sensing of light. Specifically, tunable broadband energy localization in nanoscale hotspots offers many applications in nanophotonics and quantum optics. We experimentally demonstrate a mechanism for the local enhancement of electromagnetic fields based on strong suppression of backscattering. This is achieved at a designed termination of a topologically nontrivial waveguide that nearly preserves the valley degree of freedom. The symmetry origin of the valley degree of freedom prevents edge states to undergo intervalley scattering at waveguide discontinuities that obey the symmetry of the crystal. Using near-field microscopy, we reveal that this leads to strong confinement of light at the termination of a topological photonic waveguide, even without breaking reciprocity. We emphasize the importance of symmetry conservation by comparing different waveguide termination geometries, confirming that the origin of suppressed backscattering lies with the near conservation of the valley degree of freedom, and show the broad bandwidth of the effect.
局域光场增强能够实现高效操控和传感光所需的强光与物质相互作用。具体而言,纳米级热点中可调谐的宽带能量局域在纳米光子学和量子光学中有许多应用。我们通过实验证明了一种基于强背散射抑制的电磁场局域增强机制。这是在拓扑非平凡波导的设计终端实现的,该终端几乎保留了谷自由度。谷自由度的对称起源可防止边缘态在遵循晶体对称性的波导不连续处发生谷间散射。使用近场显微镜,我们发现这会导致光在拓扑光子波导的终端处强烈受限,甚至在不破坏互易性的情况下也是如此。我们通过比较不同的波导终端几何形状强调了对称性守恒的重要性,证实了背散射抑制的起源在于谷自由度的近似守恒,并展示了该效应的宽带宽。