Xu Jing, Dong Wenchan, Huang Qingzhong, Zhang Yujia, Yin Yuchen, Zhao Zhenyu, Zeng Desheng, Gao Xiaoyan, Gu Wentao, Yang Zihao, Li Hanghang, Han Xinjie, Geng Yong, Zhai Kunpeng, Chen Bei, Fu Xin, Lei Lei, Wu Xiaojun, Dong Jianji, Su Yikai, Li Ming, Liu Jianguo, Zhu Ninghua, Guo Xuhan, Zhou Heng, Wen Huashun, Qiu Kun, Zhang Xinliang
Wuhan National Laboratory for Optoelectronics and School of Optical and Electronic Information, Huazhong University of Science and Technology, Wuhan, 430074, China.
Optics Valley Laboratory, Wuhan, 430074, China.
Front Optoelectron. 2025 May 12;18(1):10. doi: 10.1007/s12200-025-00154-6.
Taking the advantage of ultrafast optical linear and nonlinear effects, all-optical signal processing (AOSP) enables manipulation, regeneration, and computing of information directly in optical domain without resorting to electronics. As a promising photonic integration platform, silicon-on-insulator (SOI) has the advantage of complementary metal oxide semiconductor (CMOS) compatibility, low-loss, compact size as well as large optical nonlinearities. In this paper, we review the recent progress in the project granted to develop silicon-based reconfigurable AOSP chips, which aims to combine the merits of AOSP and silicon photonics to solve the unsustainable cost and energy challenges in future communication and big data applications. Three key challenges are identified in this project: (1) how to finely manipulate and reconfigure optical fields, (2) how to achieve ultra-low loss integrated silicon waveguides and significant enhancement of nonlinear effects, (3) how to mitigate crosstalk between optical, electrical and thermal components. By focusing on these key issues, the following major achievements are realized during the project. First, ultra-low loss silicon-based waveguides as well as ultra-high quality microresonators are developed by advancing key fabrication technologies as well as device structures. Integrated photonic filters with bandwidth and free spectral range reconfigurable in a wide range were realized to finely manipulate and select input light fields with a high degree of freedom. Second, several mechanisms and new designs that aim at nonlinear enhancement have been proposed, including optical ridge waveguides with reverse biased PIN junction, slot waveguides, multimode waveguides and parity-time symmetry coupled microresonators. Advanced AOSP operations are verified with these novel designs. Logical computations at 100 Gbit/s were demonstrated with self-developed, monolithic integrated programmable optical logic array. High-dimensional multi-value logic operations based on the four-wave mixing effect are realized. Multi-channel all-optical amplitude and phase regeneration technology is developed, and a multi-channel, multi-format, reconfigurable all-optical regeneration chip is realized. Expanding regeneration capacity via spatial dimension is also verified. Third, the crosstalk from optical as well as thermal coupling due to high-density integration are mitigated by developing novel optical designs and advanced packaging technologies, enabling high-density, small size, multi-channel and multi-functional operation with low power consumption. Finally, four programmable AOSP chips are developed, i.e., programmable photonic filter chip, programmable photonic logic operation chip, multi-dimensional all-optical regeneration chip, and multi-channel and multi-functional AOSP chip with packaging. The major achievements developed in this project pave the way toward ultra-low loss, high-speed, high-efficient, high-density information processing in future classical and non-classical communication and computing applications.
利用超快光学线性和非线性效应,全光信号处理(AOSP)能够直接在光域中对信息进行操纵、再生和计算,而无需借助电子器件。作为一个有前景的光子集成平台,绝缘体上硅(SOI)具有互补金属氧化物半导体(CMOS)兼容性、低损耗、尺寸紧凑以及大光学非线性等优点。在本文中,我们回顾了在开发基于硅的可重构AOSP芯片项目中的最新进展,该项目旨在结合AOSP和硅光子学的优点,以解决未来通信和大数据应用中不可持续的成本和能源挑战。该项目确定了三个关键挑战:(1)如何精细地操纵和重构光场,(2)如何实现超低损耗集成硅波导并显著增强非线性效应,(3)如何减轻光、电和热组件之间的串扰。通过关注这些关键问题,在项目期间取得了以下主要成果。首先,通过推进关键制造技术以及器件结构,开发出了超低损耗的硅基波导以及超高质量的微谐振器。实现了带宽和自由光谱范围可在宽范围内重构的集成光子滤波器,以高度自由地精细操纵和选择输入光场。其次,提出了几种旨在增强非线性的机制和新设计,包括具有反向偏置PIN结的光波导、狭缝波导、多模波导以及奇偶时间对称耦合微谐振器。利用这些新颖设计验证了先进的AOSP操作。通过自行开发的单片集成可编程光逻辑阵列展示了100 Gbit/s的逻辑计算。基于四波混频效应实现了高维多值逻辑操作。开发了多通道全光幅度和相位再生技术,并实现了多通道、多格式、可重构的全光再生芯片。还验证了通过空间维度扩展再生能力。第三,通过开发新颖的光学设计和先进的封装技术,减轻了由于高密度集成导致的光耦合以及热耦合产生的串扰,实现了低功耗的高密度、小尺寸、多通道和多功能操作。最后,开发了四个可编程AOSP芯片,即可编程光子滤波器芯片、可编程光子逻辑运算芯片、多维全光再生芯片以及带封装的多通道多功能AOSP芯片。该项目取得的主要成果为未来经典和非经典通信及计算应用中的超低损耗、高速、高效、高密度信息处理铺平了道路。