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New ultrashort pulsewidth measurement technology based on interference jitter and FPGA platform

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摘要 Conventional ultrashort pulsewidth measurement technology is autocorrelation based on second-harmonic generation;however,nonlinear crystals and bulky components are required,which usually leads to the limited wavelength range and the difficult adjustment with free-space light alignment.Here,we proposed a compact all-fiber pulsewidth measurement technology based on the interference jitter(IJ)and field-programmable gate array(FPGA)platform,without requiring a nonlinear optical device(e.g.nonlinear crystal/detector).Such a technology shows a wide measurement waveband from 1 to 2.15μm at least,a pulsewidth range from femtoseconds to 100 ps,and a small relative error of 0.15%-3.8%.In particular,a minimum pulse energy of 219 fj is experimentally detected with an average-power-peak-power product of 1.065×10^(-6)W^(2).The IJ-FPGA technology may offer a new route for miniaturized,user-friendly,and broadband pulsewidth measurement.
作者 李瑾 窦妍博 王立新 邹金海 丁宇 王航 阮秋君 董志鹏 罗正钱 Jin Li;Yanbo Dou;Lixin Wang;Jinhai Zou;Yu Ding;Hang Wang;Qiujun Ruan;Zhipeng Dong;Zhengqian Luo(Department of Electronic Engineering,Xiamen University,Xiamen 361005,China;Science and Technology on Electro-Optical Information Security Control Laboratory,Tianjin 300308,China)
出处 《Chinese Optics Letters》 SCIE EI CAS CSCD 2022年第3期46-51,共6页 中国光学快报(英文版)
基金 This work was supported by the National Science Fund for Excellent Young Scholars(No.62022069) the Fundamental Research Funds for the Central Universities(No.20720200068) the Shenzhen Science and Technology Project(No.JCYJ20210324115813037).
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