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飞秒激光在双折射微结构光纤中模式控制的四波混频效应的实验研究
引用本文:胡明列,王清月,栗岩峰,王专,柴路,张伟力.飞秒激光在双折射微结构光纤中模式控制的四波混频效应的实验研究[J].物理学报,2005,54(9):4411-4415.
作者姓名:胡明列  王清月  栗岩峰  王专  柴路  张伟力
作者单位:天津大学精密仪器与光电子工程学院超快激光研究室 光电信息技术科学教育部重点实验室(天津大学),天津 300072
基金项目:国家重点基础研究专项基金(批准号:G1999075201,2003CB314904),国家自然科学基金(批 准号:60278003)和国家高技术研究发展计划(批准号:2003AA311010)资助的课题.
摘    要:利用飞秒激光脉冲在长度为10cm,包层具有大空气比的双折射微结构光纤中通过高阶模相位 匹配的四波混频获得了波长可调谐的反斯托克斯波.实验中脉冲宽度为35fs,中心波长820nm ,单脉冲能量4nJ的飞秒激光脉冲耦合到长轴直径为5μm,短轴为46μm的双折射微结构光 纤中.在高阶模传输情况下,通过调制耦合光的偏振方向,获得了具有不同中心波长的反斯 托克斯波.通过对比分析,讨论了输入光的偏振态对双折射微结构光纤中高阶模式下四波混 频效应的影响情况.理论计算分析很好的解释了实验结果. 关键词: 微结构光纤 飞秒脉冲激光 四波混频

关 键 词:微结构光纤  飞秒脉冲激光  四波混频
文章编号:1000-3290/2005/54(09)/4411-05
收稿时间:07 15 2004 12:00AM
修稿时间:2004-07-152004-12-31

Mode-controlled four-wave-mixing in the birefringent microstructure fiber by femtosecond laser pulses
Hu Ming-Lie,Wang Qing-Yue,Li Yan-Feng,Wang Zhuan,Chai Lu,Zhang Wei-Li.Mode-controlled four-wave-mixing in the birefringent microstructure fiber by femtosecond laser pulses[J].Acta Physica Sinica,2005,54(9):4411-4415.
Authors:Hu Ming-Lie  Wang Qing-Yue  Li Yan-Feng  Wang Zhuan  Chai Lu  Zhang Wei-Li
Abstract:Birefringent microstructure fibers are shown to allow efficient gereration of anti-Stokes line emission as a result of four-wave-mixing in higher mode by using unamplified femtosecond Ti:sapphire laser pulses.Intense blue-shifted lines with different central wavelength were generated in the high-delta (i.e.high-air filling in the cladding) microstructure fiber with axis sizes 50 and 46 μm by femtosecond laser pulses with 35-fs in duration,820nm in central wavelength and 4nJ in energy per pulse.The experimental result shows that phase-matched four-wa ve mixing in higher-order modes of microstructure fibers allows unprecedentedly high efficiencies of anti-Stokes frequency conversion to be achieved for subnano joule femtosecond laser pulses.The dependence factor of the four waves mixing in birefringent microstructure fiber is compared and analyzed.Good agreement betwe en the theory and experiment is achieved.
Keywords:microstructure fiber  femtosecond laser  four-wave-mixing
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