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Characterization of phase-shifted Brillouin dynamic gratings in a polarization maintaining fiber

机译:偏振维持纤维相移布里渊动态光栅的表征

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We numerically calculate and experimentally investigate the characterization of phase-shifted Brillouin dynamic gratings (PS-BDGs) in a polarization maintaining fiber (PMF). A phase-shifted point is induced into the middle of a conventional BDG through phase-modulating one of the two pump pulse, generating a PS-BDG thanks to the stimulated Brillouin scattering (SBS). When the frequency difference between a high frequency pump1 pulse with 1ns and π-1ns and a low frequency pump2 pulse with 100ps is equal to the Brillouin frequency shift of the PMF, a transient PS-BDG with a 3dBbandwidth of 354MHz of the notch spectrum is simulated based on the coupled-wave equations of BDG. By increasing the repetition rate up to 250MHz, an enhanced PS-BDG with a deep notch depth is obtained since the residual acoustic wave of the former SBS process is enhanced by the optical waves of the latter SBS process. Then a proof-of-concept experiment is built to verify the transient PS-BDG and the results show that the notch feature is consistent with the simulation results and the notch frequency of the PS-BDG can be changed by tuning the phase shift ΔΦ. The proposed PS-BDGs have important potential applications in optical fiber sensing, microwave photonics, all-optical signal processing and RoF (radio-over-fiber) networks.
机译:我们在数值上计算和实验研究了相移布里渊动态光栅(PS-BDGS)的表征在偏振保持纤维(PMF)中。通过相位调制的两个泵脉冲中的一个,将相移点诱导到传统的BDG中间,因为通过刺激的布里渊散射(SBS)而产生PS-BDG。当具有1ns和π-1ns的高频泵1脉冲之间的频率差和具有100ps的低频泵2脉冲等于PMF的布里渊频率偏移时,具有354MHz的354MHz的354MHz的瞬态PS-BDG是基于BDG的耦合波形方程模拟。通过增加高达250MHz的重复率,获得了具有深度凹口深度的增强型PS-BDG,因为通过后者SBS处理的光学波增强了前SBS处理的残留声波。然后建立概念验证实验以验证瞬态PS-BDG,结果表明,凹口特征与模拟结果一致,并且可以通过调谐相移Δφ来改变PS-BDG的陷波频率。所提出的PS-BDG在光纤感测,微波光子,全光信号处理和ROF(无线电过光纤)网络中具有重要的潜在应用。

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