Shiratori Ryo, Nakata Masaya, Hayashi Kosuke, Baba Toshihiko
Opt Lett. 2021 Apr 15;46(8):1904-1907. doi: 10.1364/OL.422551.
Slow light generated through silicon (Si) photonic crystal waveguides (PCWs) is useful for improving the performance of Si photonic devices. However, the accumulation of coupling loss between a PCW and Si optical wiring waveguides is a problem when slow-light devices are connected in a series in a photonic integrated circuit. Previously, we reported a tapered transition structure between these waveguides and observed a coupling loss of 0.46 dB per transition. This Letter employed particle swarm optimization to engineer the arrangement of photonic crystal holes to reduce loss and succeeded in demonstrating theoretical loss value of 0.12 dB on average in the wavelength range of 1540-1560 nm and an experimental one of 0.21 dB. Crucially, this structure enhances the versatility of slow light.
通过硅(Si)光子晶体波导(PCW)产生的慢光有助于提高硅光子器件的性能。然而,当慢光器件在光子集成电路中串联连接时,PCW与硅光学布线波导之间耦合损耗的累积是一个问题。此前,我们报道了这些波导之间的锥形过渡结构,并观察到每次过渡的耦合损耗为0.46 dB。本信函采用粒子群优化方法来设计光子晶体孔的排列以降低损耗,并成功在1540 - 1560 nm波长范围内证明了平均理论损耗值为0.12 dB,实验值为0.21 dB。至关重要的是,这种结构增强了慢光的通用性。