Versatile parallel signal processing with a scalable silicon photonic chip

计算机科学 硅光子学 可扩展性 光子学 信号处理 带宽(计算) 光开关 电子工程 数字信号处理 计算机硬件 材料科学 光电子学 电信 工程类 数据库
作者
Shihan Hong,Jiachen Wu,Yiwei Xie,Xiyuan Ke,Huan Li,Linyan Lyu,Yingying Peng,Qingying Yao,Yao Shi,Ke Wang,Leimeng Zhuang,Pan Wang,Daoxin Dai
出处
期刊:Nature Communications [Nature Portfolio]
卷期号:16 (1) 被引量:1
标识
DOI:10.1038/s41467-024-55162-5
摘要

Silicon photonic signal processors promise a new generation of signal processing hardware with significant advancements in processing bandwidth, low power consumption, and minimal latency. Programmable silicon photonic signal processors, facilitated by tuning elements, can reduce hardware development cycles and costs. However, traditional programmable photonic signal processors based on optical switches face scalability and performance challenges due to control complexity and transmission losses. Here, we propose a scalable parallel signal processor on silicon for versatile applications by interleaving wavelength and temporal optical dimensions. Additionally, it incorporates ultra-low-loss waveguides and low-phase-error optical switch techniques, achieving an overall insertion loss of 10 dB. This design offers low loss, high scalability, and simplified control, enabling advanced functionalities such as accurate microwave reception, narrowband microwave photonic filtering, wide-bandwidth arbitrary waveform generation, and high-speed parallel optical computing without the need for tuning elements calibration. Our programmable parallel signal processor demonstrates advantages in both scale and performance, marking a significant advancement in large-scale, high-performance, multifunctional photonic systems. This work presents a scalable parallel signal processor on silicon leveraging temporal and wavelength dimensions. With ultra-low-loss waveguides and low-phase-error switches, it can be programmed to enable versatile advanced functions, showcasing great promise for multifunctional photonic systems.

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