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变迹光纤布拉格光栅的飞秒激光逐行写入

Femtosecond laser line-by-line inscription of apodized fiber Bragg gratings.

作者信息

He Jun, Chen Ziyong, Xu Xizhen, He Jia, Xu Baijie, Du Bin, Guo Kuikui, Chen Runxiao, Wang Yiping

出版信息

Opt Lett. 2021 Nov 15;46(22):5663-5666. doi: 10.1364/OL.441888.

Abstract

The reflection spectra of conventional fiber Bragg gratings (FBGs) with uniform index modulation profiles typically have strong sidelobes, which hamper the performance of FBG-based optical filters, fiber lasers, and sensors. Here, we propose and demonstrate a femtosecond laser line-by-line (LbL) scanning technique for fabricating apodized FBGs with suppressed sidelobes. This approach can flexibly achieve various apodized modulation profiles via precise control over the length and/or transverse position of each laser-inscribed index modification track. We theoretically and experimentally studied the influences of the apodization function on the side-mode suppression ratio (SMSR) in the fabricated apodized FBG, and the results show that a maximum SMSR of 20.6 dB was achieved in a Gaussian-apodized FBG. Subsequently, we used this method to fabricate various apodized FBGs, and the SMSRs in these FBGs were reduced effectively. Specifically, a dense-wavelength-division-multiplexed Gaussian-apodized FBG array with a wavelength interval of 1.50 nm was successfully fabricated, and the SMSR in such an array is 14 dB. Moreover, a Gaussian-apodized phase-shifted FBG and chirped FBG were also demonstrated with a high SMSR of 14 and 16 dB, respectively. Therefore, such an apodization method based on a modified femtosecond laser LbL scanning technique is an effective and flexible way to fabricate various FBGs with high SMSRs, which is promising to improve the performance of optical filters, fiber lasers, and sensors.

摘要

具有均匀折射率调制分布的传统光纤布拉格光栅(FBG)的反射光谱通常具有很强的旁瓣,这会妨碍基于FBG的光学滤波器、光纤激光器和传感器的性能。在此,我们提出并演示了一种用于制造旁瓣被抑制的变迹FBG的飞秒激光逐行(LbL)扫描技术。通过精确控制每个激光写入的折射率修改轨迹的长度和/或横向位置,这种方法可以灵活地实现各种变迹调制分布。我们从理论和实验上研究了变迹函数对所制造的变迹FBG中的边模抑制比(SMSR)的影响,结果表明在高斯变迹FBG中实现了20.6 dB的最大SMSR。随后,我们使用这种方法制造了各种变迹FBG,并且这些FBG中的SMSR得到了有效降低。具体而言,成功制造了波长间隔为1.50 nm的密集波分复用高斯变迹FBG阵列,并且这种阵列中的SMSR为14 dB。此外,还演示了高斯变迹相移FBG和啁啾FBG,其SMSR分别高达14 dB和16 dB。因此,这种基于改进的飞秒激光LbL扫描技术的变迹方法是制造具有高SMSR的各种FBG的有效且灵活的方式,有望提高光学滤波器、光纤激光器和传感器的性能。

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