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利用可扩展硅光子芯片实现多功能并行信号处理。

Versatile parallel signal processing with a scalable silicon photonic chip.

作者信息

Hong Shihan, Wu Jiachen, Xie Yiwei, Ke Xiyuan, Li Huan, Lyv Linyan, Peng Yingying, Yao Qingrui, Shi Yaocheng, Wang Ke, Zhuang Leimeng, Wang Pan, Dai Daoxin

机构信息

State Key Laboratory for Extreme Photonics and Instrumentation, Center for Optical & Electromagnetic Research, College of Optical Science and Engineering, International Research Center for Advanced Photonics (Haining), Zhejiang University, Hangzhou, China.

School of Engineering, RMIT University, Melbourne, VIC, Australia.

出版信息

Nat Commun. 2025 Jan 2;16(1):288. doi: 10.1038/s41467-024-55162-5.

Abstract

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.

摘要

硅光子信号处理器有望带来新一代信号处理硬件,在处理带宽、低功耗和最小延迟方面取得重大进展。由调谐元件推动的可编程硅光子信号处理器可以减少硬件开发周期和成本。然而,基于光开关的传统可编程光子信号处理器由于控制复杂性和传输损耗而面临可扩展性和性能挑战。在此,我们通过交织波长和时间光学维度,提出了一种用于通用应用的硅基可扩展并行信号处理器。此外,它采用了超低损耗波导和低相位误差光开关技术,实现了10 dB的总插入损耗。这种设计具有低损耗、高可扩展性和简化控制的特点,无需调谐元件校准即可实现诸如精确微波接收、窄带微波光子滤波、宽带任意波形生成和高速并行光学计算等先进功能。我们的可编程并行信号处理器在规模和性能方面都展现出优势,标志着大规模、高性能、多功能光子系统取得了重大进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b4a7/11695732/daa7b76dd6c6/41467_2024_55162_Fig1_HTML.jpg

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