基于高阶模转换的锁模涡旋光纤激光器

Haocun Wu, Jiangtao Xu, Longtao Wang, Linping Teng, Si Lv, F. Pang, Xianglong Zeng
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引用次数: 0

摘要

本文总结了两种基于长周期光纤光栅(LPFGs)产生腔内光涡旋光束的锁模光纤激光器(MLFLs),并利用另一种全光纤模式转换器声致光纤光栅(AIFG)实现腔外混合模式控制。首先,我们使用的LPFG在转弯点(TAP)工作。由于通过TAP-LPFG进行模式转换可以产生LP11模式的完整本征模集,因此通过对本征模诱导$\pi/2$的相位差来产生ovb。其次,平均功率1.94 W的锁模脉冲来自耗散孤子共振(DSR)状态下的MLFL。线性腔由两个分裂比分别为50/50和5/95的光纤环形反射镜组成。5/95 FLM作为一个非线性光学环镜(NOLM)工作,旨在启动稳定的DSR。然后通过AIFG将输出基模全部或部分转换为高阶模(HOM)。模式模式通过光学成像系统捕获。利用全光纤模式变换器的优势,我们的方法可以扩展高功率条件下模式控制的多样性和高功率光纤激光器的其他研究。
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Mode-Locked Vortex Fiber Laser Based on High-Order Mode Conversion
We summarize two kinds of mode-locked fiber lasers (MLFLs) that generate intra-cavity optical vortex beams (OVBs) based on long period fiber gratings (LPFGs) and implement extra-cavity hybrid mode control with another kind of all-fiber mode converter called acoustically-induced fiber grating (AIFG). Firstly, the LPFG we used works at the turn-around point (TAP). Since mode conversion through TAP-LPFG can produce the complete set of eigenmodes of LP11 mode, OVBs are then generated by inducing a phase difference of $\pi/2$ to the eigenmodes. Secondly, the 1.94 W average-power mode-locked pulses come from a MLFL in the dissipative soliton resonance (DSR) regime. The linear cavity is formed by two fiber loop mirrors (FLMs) whose splitting ratios are 50/50 and 5/95. The 5/95 FLM operates as a nonlinear optical loop mirror (NOLM) which aims at initiating stable DSR. The output fundamental mode is then fully or partially converted to high-order mode (HOM) through AIFG. Mode patterns are captured through an optical imaging system. Taking the advantage of all-fiber mode converters, our approach may expand the diversity of mode control under high-power condition and other researches in high-power fiber lasers.
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