Fernández de Cabo Raquel, Sánchez-Sánchez Alejandro, Yang Yijun, Melati Daniele, Alonso-Ramos Carlos, Velasco Aitor V, González-Andrade David
Instituto de Óptica, Consejo Superior de Investigaciones Científicas (CSIC), 28006 Madrid, Spain.
Telecommunication Research Institute (TELMA), Universidad de Málaga, CEI Andalucía TECH, E.T.S.I. Telecomunicación, 29010 Málaga, Spain.
Nanophotonics. 2024 Aug 7;13(21):4037-4045. doi: 10.1515/nanoph-2024-0291. eCollection 2024 Sep.
Multimode silicon photonics, leveraging mode-division multiplexing technologies, offers significant potential to increase capacity of large-scale multiprocessing systems for on-chip optical interconnects. These technologies have implications not only for telecom and datacom applications, but also for cutting-edge fields such as quantum and nonlinear photonics. Thus, the development of compact, low-loss and low-crosstalk multimode devices, in particular mode exchangers, is crucial for effective on-chip mode manipulation. This work introduces a novel mode exchanger that exploits the properties of subwavelength grating metamaterials and symmetric Y-junctions, achieving low losses and crosstalk over a broad bandwidth and a compact size of only 6.5 µm × 2.6 µm. The integration of SWG nanostructures in our design enables precise control of mode exchange through different propagation constants in the arms and metamaterial, and takes advantage of dispersion engineering to broaden the operating bandwidth. Experimental characterization demonstrates, to the best of our knowledge, the broadest operational bandwidth covering from 1,420 nm to 1,620 nm, with measured losses as low as 0.5 dB and extinction ratios higher than 10 dB. Enhanced performance is achieved within a 149 nm bandwidth (1,471-1,620 nm), showing measured losses below 0.4 dB and extinction ratios greater than 18 dB.
利用模式分割复用技术的多模硅光子学,为增加用于片上光互连的大规模多处理系统的容量提供了巨大潜力。这些技术不仅对电信和数据通信应用有影响,而且对量子和非线性光子学等前沿领域也有影响。因此,开发紧凑、低损耗和低串扰的多模器件,特别是模式交换器,对于有效的片上模式操纵至关重要。这项工作介绍了一种新型模式交换器,它利用亚波长光栅超材料和对称Y结的特性,在仅6.5μm×2.6μm的紧凑尺寸上实现了宽带宽内的低损耗和串扰。我们设计中SWG纳米结构的集成能够通过臂和超材料中不同的传播常数精确控制模式交换,并利用色散工程来拓宽工作带宽。据我们所知,实验表征表明,其工作带宽最宽,覆盖1420nm至1620nm,测得的损耗低至0.5dB,消光比高于10dB。在149nm带宽(1471 - 1620nm)内实现了增强性能,测得的损耗低于0.4dB,消光比大于18dB。