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Analog parallel processor for broadband multifunctional integrated system based on silicon photonic platform

delete2025-02-07
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OA
AI
N
Na Qian
D
Defu Zhou
H
Haowen Shu
M
Ming Zhang
王兴君 (Xingjun Wang)
戴道锌 (Daoxin Dai)
邓霄 cover
邓霄 (Xiao Deng)
邹卫文 (Weiwen Zou) *
DOI:10.1038/s41377-025-01753-wdelete
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Abstract

Abstract

En 中文
Sharing the hardware platform between diverse information systems to establish full cooperation among different functionalities has attracted substantial attention. However, broadband multifunctional integrated systems with large operating frequency ranges are challenging due to the bandwidth and computing speed restrictions of electronic circuitry. Here, we report an analog parallel processor (APP) based on the silicon photonic platform that directly discretizes and parallelizes the broadband signal in the analog domain. The APP first discretizes the signal with the optical frequency comb and then adopts optical dynamic phase interference to reassign the analog signal into 2N parallel sequences. Via photonic analog parallelism, data rate and data volume in each sequence are simultaneously compressed, which mitigates the requirement on each parallel computing core. Moreover, the fusion of the outputs from each computing core is equivalent to directly processing broadband signals. In the proof-of-concept experiment, two-channel analog parallel processing of broadband radar signals and high-speed communication signals is implemented on the single photonic integrated circuit. The bandwidth of broadband radar signal is 6 GHz and the range resolution of 2.69 cm is achieved. The wireless communication rate of 8 Gbit/s is also validated. Breaking the bandwidth and speed limitations of the single-computing core along with further exploring the multichannel potential of this architecture, we anticipate that the proposed APP will accelerate the development of powerful opto-electronic processors as critical support for applications such as satellite networks and intelligent driving.
Keywords:
MICROWAVE PHOTONICS
LITHIUM-NIOBATE
RADAR
COMMUNICATION
CHIP
CONVERGENCE
PERFORMANCE
CONVERTER
ANTENNA
DESIGN

Journal

L
Light Science and Applications
IF:
23.4
Papers:
437
Citations:
3.0W

Organization

No organization information available