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Low-noise stable millimeter-wave optoelectronic oscillator based on self-regenerative frequency-dividing and phase-locking techniques
Liu, Anni1; Dai, Jian1,2; Wu, Zhonghan1; Liu, Jingliang1; Xu, Kun1
2019
会议名称17th International Conference on Optical Communications and Networks, ICOCN 2018
会议录名称17th International Conference on Optical Communications and Networks, ICOCN 2018
卷号11048
会议日期2018-11-16
会议地点Zhuhai, China
出版者SPIE
产权排序2
摘要

A millimeter-wave optoelectronic oscillator employing self-regenerative frequency dividing and phase-locking techniques is proposed. The frequency division of millimeter-wave signal is achieved effectively via self-regenerative frequency divider breaking the frequency limitation of commercial frequency dividers. In virtue of the frequency conversion pair, the phase-locking technique is effectively utilized to stabilize the millimeter-wave optoelectronic oscillator by a commercial analog phase shifter in relative low frequency band. Finally, a 40-GHz millimeter-wave signal is generated with the single-sideband phase noise about -116 dBc/Hz at 10-kHz frequency offset. Besides, the frequency stability of the proposed millimeter-wave optoelectronic oscillator is greatly improved from 1.2×10-6 to 2.96×10-13 at 1024-s averaging time in a lab room without any thermal control. © 2019 SPIE.

关键词Millimeter-wave signal optoelectronic oscillator self-regenerative frequency divider phase locked loop
作者部门瞬态光学研究室
DOI10.1117/12.2518306
收录类别EI ; CPCI
ISBN号9781510627703
语种英语
ISSN号0277786X;1996756X
WOS记录号WOS:000465823400094
EI入藏号20191006602368
引用统计
文献类型会议论文
条目标识符http://ir.opt.ac.cn/handle/181661/31296
专题瞬态光学研究室
通讯作者Liu, Anni
作者单位1.State Key Laboratory of Information Photonics and Optical Communications, Beijing University of Posts and Telecommunications, Beijing; 100876, China;
2.State Key Laboratory of Transient Optics and Photonics, Chinese Academy of Sciences, Xian; 710119, China
推荐引用方式
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Liu, Anni,Dai, Jian,Wu, Zhonghan,et al. Low-noise stable millimeter-wave optoelectronic oscillator based on self-regenerative frequency-dividing and phase-locking techniques[C]:SPIE,2019.
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