Yi Xiaolin, Li Chenlei, Zhao Weike, Zhang Long, Shi Yaocheng, Dai Daoxin
State Key Laboratory for Modern Optical Instrumentation, Center for Optical & Electromagnetic Research, College of Optical Science and Engineering, International Research Center for Advanced Photonics, Zhejiang University, Zijingang Campus, Hangzhou 310058, China.
Ningbo Research Institute, Zhejiang University, Ningbo 315100, China.
Nanophotonics. 2023 Mar 22;12(9):1809-1821. doi: 10.1515/nanoph-2023-0111. eCollection 2023 Apr.
Efficient mode-selective manipulation in multimode photonics has drawn much attention as a key technology for realizing scalable and flexible mode-division multiplexing (MDM) systems. A mode-selective manipulation scheme based on the modal-field redistribution assisted with subwavelength grating (SWG) structures is proposed and demonstrated for the first time. In particular, the proposed scheme focuses on manipulating the coupling coefficient as well as the ratio / for different mode channels. The SWG structures are used to engineer the refractive-index profile and redistribute the modal field distributions in the multimode bus waveguide, so that different modes are localized in different local regions. In this way, the undesired mode coupling can be suppressed significantly while the desired mode coupling can be enhanced. With such mode manipulation scheme, the fundamental and higher-order mode channels in the bus waveguide can be added/dropped independently and freely. As a proof of concept, a three-channel mode-selective add-drop coupler utilizing the proposed scheme is fabricated and demonstrated experimentally on silicon. The fabricated devices show low excess losses ranging from 0.1 to 1.9 dB over a wavelength range of 70 nm. The inter-mode crosstalks are lower than -19.4 dB in the wavelength range of 1525-1600 nm. The crosstalks for the drop and through ports (i.e., the residual power) are suppressed to be as low as -18 ∼ -30 dB in the wavelength range of ∼60 nm with the assistance of an additional coupler in cascade for performance improvement. The present concept of manipulating the evanescent coupling of the mode-channels paves the way for designing multimode silicon photonic devices with flexible mode-selective manipulation for MDM systems.
多模光子学中的高效模式选择性操控作为实现可扩展且灵活的模式分割复用(MDM)系统的关键技术,已备受关注。首次提出并演示了一种基于亚波长光栅(SWG)结构辅助的模式场重新分布的模式选择性操控方案。特别地,该方案着重于操控不同模式通道的耦合系数以及比率/。SWG结构用于设计折射率分布并在多模总线波导中重新分布模式场分布,使得不同模式局域在不同的局部区域。通过这种方式,可以显著抑制不期望的模式耦合,同时增强期望的模式耦合。利用这种模式操控方案,总线波导中的基模和高阶模式通道可以独立且自由地进行添加/下路操作。作为概念验证,在硅上制作并通过实验演示了一个采用该方案的三通道模式选择性上下路耦合器。制作的器件在70纳米波长范围内显示出0.1至1.9分贝的低过量损耗。在1525 - 1600纳米波长范围内,模式间串扰低于 - 19.4分贝。在约60纳米波长范围内,通过级联额外的耦合器以提高性能,下路端口和直通端口的串扰(即残余功率)被抑制至低至 - 18 ∼ - 30分贝。当前这种操控模式通道倏逝耦合的概念为设计具有灵活模式选择性操控的MDM系统多模硅光子器件铺平了道路。