首页 | 本学科首页   官方微博 | 高级检索  
     检索      

用于CARS激发源的全光纤飞秒脉冲谱压缩
引用本文:江俊峰,黄灿,刘琨,张永宁,王双,张学智,马喆,陈文杰,于哲,刘铁根.用于CARS激发源的全光纤飞秒脉冲谱压缩[J].物理学报,2017,66(20):204207-204207.
作者姓名:江俊峰  黄灿  刘琨  张永宁  王双  张学智  马喆  陈文杰  于哲  刘铁根
作者单位:天津大学精密仪器与光电子工程学院, 水利工程仿真与安全国家重点实验室, 光电信息技术科学教育部重点实验室, 光纤传感研究所, 天津市光纤传感工程中心, 天津 300072
基金项目:国家自然科学基金(批准号:61378043,61675152,61227011,61475114,61505139)、国家重大科学仪器设备开发专项(批准号:2013YQ030915)、天津市自然科学基金(批准号:13JCYBJC16200)和深圳市科技创新委员会项目(批准号:JCYJ20120831153904083)资助的课题.
摘    要:进行了基于光纤预啁啾和自相位调制的多模/单模组合式全光纤啁啾谱压缩研究.提出利用多模光纤模式估计群速度色散均值的方法,并将该估计值作为啁啾参量分析的计算参数,仿真计算了50/125μm折射率渐变多模光纤的群速度色散均值及其与单模光纤在不同长度比值下的光谱压缩效果.采用三种折射率渐变多模光纤进行实验,对比分析了折射率渐变多模光纤的芯径大小及其与单模光纤的长度比值对光谱压缩效果的影响.实验结果表明使用50/125μm折射率渐变多模光纤获得光谱最大压缩比为5.796,谱宽为2.243 nm,与理论仿真一致;使用105/125μm折射率渐变多模光纤,可进一步提高压缩比至152.941,输出谱宽为0.085 nm的光脉冲.将此脉冲用于相干反斯托克斯拉曼散射光谱探测,理论光谱分辨率可达1.386 cm~(-1).

关 键 词:非线性光纤光学  光纤预啁啾  自相位调制  光谱压缩
收稿时间:2017-03-24

All-fiber spectral compression of femtosecond pulse for coherent anti-Stokes Raman scattering excitation source
Jiang Jun-Feng,Huang Can,Liu Kun,Zhang Yong-Ning,Wang Shuang,Zhang Xue-Zhi,Ma Zhe,Chen Wen-Jie,Yu Zhe,Liu Tie-Gen.All-fiber spectral compression of femtosecond pulse for coherent anti-Stokes Raman scattering excitation source[J].Acta Physica Sinica,2017,66(20):204207-204207.
Authors:Jiang Jun-Feng  Huang Can  Liu Kun  Zhang Yong-Ning  Wang Shuang  Zhang Xue-Zhi  Ma Zhe  Chen Wen-Jie  Yu Zhe  Liu Tie-Gen
Institution:State Key Laboratory of Hydraulic Engineering Simulation and Safety, Key Laboratory of Opto-Electronics Information Technology of the Ministry of Education, Institue of Optical Fiber Sensing, Tianjin Optical Fiber Sensing Engineering Center, School of Precision Instrument and Opto-Electronics Engineering, Tianjin University, Tianjin 300072, China
Abstract:Coherent anti-Stokes Raman scattering (CARS) imaging of femtosecond pulses has been a research hotspot in recent years, but the wide spectrum of the femtosecond pulse limits the spectral resolution of CARS imaging. Spectral compression is considered as an effective method to solve this problem. In this work, an all-fiber chirp spectral compression method of graded-index multi-mode fiber/single-mode fiber (GI-MMF/SMF) structure based on fiber pre-chirp and self-phase modulation is presented. It can be used as a CARS excitation source to increase the spectral resolution of CARS imaging. In the section of numerical simulation, the mean group velocity dispersion value of GI-MMF is used as a numerical parameter of the chirp analysis, which is estimated by analyzing modes of GI-MMF. On one hand, the mode field distributions in GI-MMF are simulated numerically by the finite-difference time-domain method, and these different modes are divided into eight mode groups. On the other hand, the energy proportion of each mode group is regarded as a weight value. Then we can obtain a mean group velocity dispersion value of 50/125 μm GI-MMF, which is -2.287×10-5 fs2/nm, by calculating the sum of group velocity dispersion weight values of mode groups. The results of spectral compression with different length ratios of 50/125 μm GI-MMF to 780HP SMF are also analyzed based on the generalized nonlinear Schrödinger equation and split-step Fourier algorithm. The spectral width of 2.486 nm and the compression ratio of 5.230 are calculated, when the length ratio of 50/125 μm GI-MMF to 780HP SMF is 1.2. In the section of experiment, three kinds of GI-MMFs with different core diameters are used in the experiment, the influences of the core diameter and the length ratio of GI-MMF to 780HP SMF on the spectral compression are investigated. The results show that the spectral width of 2.243 nm, corresponding to the compression ratio of 5.796 is obtained, when the length ratio of 50/125 μm GI-MMF to 780HP SMF is 1.2, which is consistent with the simulation result. Under the condition of the same length ratio, the use of 105/125 μm GI-MMF can raise the compression ratio to 152.941, and the spectral width of output pulse is 0.085 nm. When the pulse is applied to CARS spectrum detection, the theoretical spectral resolution can be 1.386 cm-1. The experimental results show that the spectral compression way to improve spectral resolution of CARS imaging is effective. This spectral compression system is characterized by simple structure, and high and controllable compression ratio, which provides theoretical and experimental basis for the all-fiber high spectral resolution CARS excitation source research.
Keywords:nonlinear fiber optics  fiber pre-chirp  self-phase modulation  spectral compression
本文献已被 CNKI 等数据库收录!
点击此处可从《物理学报》浏览原始摘要信息
点击此处可从《物理学报》下载免费的PDF全文
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号