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超宽带动态微波频率 - 幅度测量

Ultrawideband dynamic microwave frequency-amplitude measurement.

作者信息

He Huan, Wang Jingchuan, Zhao Zhiyong, Huang Dongmei, Lau Alan Pak Tao, Lu Chao, Tang Ming

机构信息

Wuhan National Lab for Optoelectronics (WNLO), School of Optical and Electronic Information, Huazhong University of Science and Technology, Wuhan 430074, China.

Photonics Research Centre, Department of Electrical and Electronic Engineering, The Hong Kong Polytechnic University, Hong Kong, SAR, China.

出版信息

Sci Adv. 2025 May 2;11(18):eadu5130. doi: 10.1126/sciadv.adu5130. Epub 2025 Apr 30.

Abstract

Microwave measurement is crucial in various fields, such as communication, radar, and cognitive radio, now poised for a revolution with the advent of photonic-assisted techniques that promise unprecedented performance. However, existing methods often disrupt the amplitude integrity of unknown signals and rely on time-consuming frequency sweeping to achieve multifrequency detection, which markedly restricts their instantaneous bandwidth, response speed, and accuracy. Here, we present a groundbreaking approach leveraging digital optical frequency comb-enabled stimulated Brillouin scattering to achieve instantaneous microwave frequency and amplitude detection, attaining a record-breaking 50.8-gigahertz bandwidth, a 1.1-megahertz accuracy, and a 500-nanosecond temporal resolution, which is three orders of magnitude improvement over that obtained with frequency sweeping schemes. In addition to conventional frequency detection, the proposed technique enables simultaneous multifrequency microwave amplitude measurement and achieves a substantial performance enhancement in the figure of merit of more than 10-fold, which paves the way for dynamic microwave signal detection and analysis.

摘要

微波测量在通信、雷达和认知无线电等各个领域都至关重要,随着光子辅助技术的出现,这些领域正迎来一场革命,有望实现前所未有的性能。然而,现有方法常常会破坏未知信号的幅度完整性,并且依赖耗时的频率扫描来实现多频检测,这显著限制了它们的瞬时带宽、响应速度和精度。在此,我们提出一种开创性的方法,利用基于数字光学频率梳的受激布里渊散射来实现瞬时微波频率和幅度检测,获得了创纪录的50.8吉赫兹带宽、1.1兆赫兹精度和500纳秒时间分辨率,与频率扫描方案相比有三个数量级的提升。除了传统的频率检测,该技术还能同时进行多频微波幅度测量,并在品质因数上实现了超过10倍的显著性能提升,为动态微波信号检测和分析铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/252d/12042904/e99017f18136/sciadv.adu5130-f1.jpg

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