Tao Zihan, Wang Bo, Bai Bowen, Chen Ruixuan, Shu Haowen, Zhang Xuguang, Wang Xingjun
State Key Laboratory of Advanced Optical Communication Systems and Networks, School of Electronics, Peking University, Beijing, 100871, China.
Frontier Science Center for Nano-Optoelectronics, Peking University, Beijing, 100871, China.
Front Optoelectron. 2022 Apr 2;15(1):5. doi: 10.1007/s12200-022-00008-5.
Integrated waveguides with slot structures have attracted increasing attention due to their advantages of tight mode confinement and strong light-matter interaction. Although extensively studied, the issue of mode mismatch with other strip waveguide-based optical devices is a huge challenge that prevents integrated waveguides from being widely utilized in large-scale photonic-based circuits. In this paper, we demonstrate an ultra-compact low-loss slot-strip converter with polarization insensitivity based on the multimode interference (MMI) effect. Sleek sinusoidal profiles are adopted to allow for smooth connection between the slot and strip waveguide, resulting reflection reduction. By manipulating the MMI effect with structure optimization, the self-imaging positions of the TE and TM modes are aligned with minimized footprint, leading to low-loss transmission for both polarizations. The measurement results show that high coupling efficiencies of - 0.40 and - 0.64 dB are achieved for TE and TM polarizations, respectively. The device has dimensions as small as 1.1 μm × 1.2 μm and composed of factory-available structures. The above characteristics of our proposed compact slot-strip converter makes it a promising device for future deployment in multi-functional integrated photonics systems.
具有狭缝结构的集成波导因其模式限制紧密和光与物质相互作用强等优点而受到越来越多的关注。尽管已得到广泛研究,但与其他基于条形波导的光学器件存在模式失配问题,这是一个巨大挑战,阻碍了集成波导在大规模光子电路中的广泛应用。在本文中,我们展示了一种基于多模干涉(MMI)效应的具有偏振不敏感性的超紧凑低损耗狭缝 - 条形转换器。采用光滑的正弦轮廓以实现狭缝和条形波导之间的平滑连接,从而减少反射。通过结构优化来操控MMI效应,TE和TM模式的自成像位置在最小化的尺寸下对齐,实现了两种偏振的低损耗传输。测量结果表明,TE和TM偏振的耦合效率分别高达 -0.40 dB和 -0.64 dB。该器件尺寸小至1.1μm×1.2μm,且由工厂现成的结构组成。我们所提出的紧凑型狭缝 - 条形转换器的上述特性使其成为未来在多功能集成光子系统中部署的有前景的器件。