Du Zhuochen, Liao Kun, Dai Tianxiang, Wang Yufei, Gao Jinze, Huang Haiqi, Qi Huixin, Li Yandong, Wang Xiaoxiao, Su Xinran, Wang Xingyuan, Yang Yan, Lu Cuicui, Hu Xiaoyong, Gong Qihuang
State Key Laboratory for Mesoscopic Physics & Department of Physics, Collaborative Innovation Center of Quantum Matter, Beijing Academy of Quantum Information Sciences, Nano-optoelectronics Frontier Center of Ministry of Education, Peking University, Beijing 100871, China.
School of Instrumentation and Optoelectronic Engineering, Beihang University, Beijing 100191, China.
Sci Adv. 2024 Jun 21;10(25):eadm7569. doi: 10.1126/sciadv.adm7569. Epub 2024 Jun 19.
Realizing a multifunctional integrated photonic platform is one of the goals for future optical information processing, which usually requires large size to realize due to multiple integration challenges. Here, we realize a multifunctional integrated photonic platform with ultracompact footprint based on inverse design. The photonic platform is compact with 86 inverse designed-fixed couplers and 91 phase shifters. The footprint of each coupler is 4 μm by 2 μm, while the whole photonic platform is 3 mm by 0.2 mm-one order of magnitude smaller than previous designs. One-dimensional Floquet Su-Schrieffer-Heeger model and Aubry-André-Harper model are performed with measured fidelities of 97.90 (±0.52) % and 99.34 (±0.44) %, respectively. We also demonstrate a handwritten digits classification task with the test accuracy of 87% using on-chip training. Moreover, the scalability of this platform has been proved by demonstrating more complex computing tasks. This work provides an effective method to realize an ultrasmall integrated photonic platform.
实现一个多功能集成光子平台是未来光信息处理的目标之一,由于存在多种集成挑战,通常需要较大尺寸才能实现。在此,我们基于逆向设计实现了一个具有超紧凑尺寸的多功能集成光子平台。该光子平台结构紧凑,包含86个逆向设计的固定耦合器和91个移相器。每个耦合器的尺寸为4μm×2μm,而整个光子平台的尺寸为3mm×0.2mm,比之前的设计小一个数量级。一维弗洛凯 - 苏 - 施里弗 - 黑格模型和奥布里 - 安德烈 - 哈珀模型的测量保真度分别为97.90(±0.52)%和99.34(±0.44)%。我们还展示了一个手写数字分类任务,通过片上训练测试准确率达到了87%。此外,通过展示更复杂的计算任务证明了该平台的可扩展性。这项工作为实现超小型集成光子平台提供了一种有效方法。