Sun Aolong, Deng Xuyu, Xing Sizhe, Li Zhongya, Jia Junlian, Li Guoqiang, Yan An, Luo Penghao, Li Yixin, Luo Zhiteng, Shi Jianyang, Li Ziwei, Shen Chao, Hong Bingzhou, Chu Wei, Xiao Xi, Chi Nan, Zhang Junwen
Opt Express. 2023 Jul 31;31(16):25415-25437. doi: 10.1364/OE.493866.
Inverse design has been widely studied as an efficient method to reduce footprint and improve performance for integrated silicon photonic (SiP) devices. In this study, we have used inverse design to develop a series of ultra-compact dual-band wavelength demultiplexing power splitters (WDPSs) that can simultaneously perform both wavelength demultiplexing and 1:1 optical power splitting. These WDPSs could facilitate the potential coexistence of dual-band passive optical networks (PONs). The design is performed on a standard silicon-on-insulator (SOI) platform using, what we believe to be, a novel two-step direct binary search (TS-DBS) method and the impact of different hyperparameters related to the physical structure and the optimization algorithm is analyzed in detail. Our inverse-designed WDPS with a minimum feature size of 130 nm achieves a 12.77-times reduction in footprint and a slight increase in performance compared with the forward-designed WDPS. We utilize the optimal combination of hyperparameters to design another WDPS with a minimum feature size reduced to 65 nm, which achieves ultra-low insertion losses of 0.36 dB and 0.37 dB and crosstalk values of -19.91 dB and -17.02 dB at wavelength channels of 1310 nm and 1550 nm, respectively. To the best of our knowledge, the hyperparameters of optimization-based inverse design are systematically discussed for the first time. Our work demonstrates that appropriate setting of hyperparameters greatly improves device performance, throwing light on the manipulation of hyperparameters for future inverse design.
逆设计作为一种有效方法,已被广泛研究用于减小集成硅光子(SiP)器件的尺寸并提高其性能。在本研究中,我们利用逆设计开发了一系列超紧凑双波段波长解复用功率分配器(WDPS),它们能够同时执行波长解复用和1:1光功率分配功能。这些WDPS有助于双波段无源光网络(PON)的潜在共存。该设计是在标准绝缘体上硅(SOI)平台上进行的,采用了我们认为是新颖的两步直接二进制搜索(TS-DBS)方法,并详细分析了与物理结构和优化算法相关的不同超参数的影响。我们通过逆设计的WDPS,最小特征尺寸为130 nm,与正向设计的WDPS相比,尺寸减小了12.77倍,性能略有提高。我们利用超参数的最佳组合设计了另一种WDPS,其最小特征尺寸减小到65 nm,在1310 nm和1550 nm波长通道处分别实现了0.36 dB和0.37 dB的超低插入损耗以及-19.91 dB和-17.