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基于磷硅酸盐光纤的具有超高光谱纯度的低量子缺陷拉曼光纤激光器。

Phosphosilicate Fiber-Based Low Quantum Defect Raman Fiber Laser with Ultrahigh Spectral Purity.

作者信息

Zhang Yang, Xu Jiangming, Li Sicheng, Liang Junrui, Ye Jun, Ma Xiaoya, Yao Tianfu, Zhou Pu

机构信息

College of Advanced Interdisciplinary Studies, National University of Defense Technology, Changsha 410073, China.

出版信息

Nanomaterials (Basel). 2022 Apr 27;12(9):1490. doi: 10.3390/nano12091490.

Abstract

The phosphosilicate fiber-based Raman fiber laser (RFL) has great potential in achieving low-quantum defect (QD) high-power laser output. However, the laser's performance could be seriously degraded by the Raman-assisted four-wave mixing (FWM) effect and spontaneous Raman generation at 14.7 THz. To find possible ways to suppress the Raman-assisted FWM effect and spontaneous Raman generation, here, we propose a revised power-balanced model to simulate the nonlinear process in the low-QD RFL. The power evolution characteristics in this low-QD RFL with different pump directions are calculated. The simulation results show that, compared to the forward-pumped low-QD RFL, the threshold powers of spontaneous Raman generation in the backward-pumped RFL are increased by 40% and the Raman-assisted FWM effect is well suppressed. Based on the simulation work, we change the pump direction of a forward-pumped low-QD RFL into backward pumping. As a result, the maximum signal power is increased by 20% and the corresponding spectral purity is increased to 99.8%. This work offers a way for nonlinear effects controlling in low-QD RFL, which is essential in its further performance scaling.

摘要

基于磷硅酸盐光纤的拉曼光纤激光器(RFL)在实现低量子缺陷(QD)高功率激光输出方面具有巨大潜力。然而,拉曼辅助四波混频(FWM)效应和14.7太赫兹处的自发拉曼产生会严重降低该激光器的性能。为了找到抑制拉曼辅助FWM效应和自发拉曼产生的可能方法,在此我们提出一个修正的功率平衡模型来模拟低QD RFL中的非线性过程。计算了不同泵浦方向下该低QD RFL中的功率演化特性。模拟结果表明,与正向泵浦的低QD RFL相比,反向泵浦RFL中自发拉曼产生的阈值功率提高了40%,拉曼辅助FWM效应得到了很好的抑制。基于模拟工作,我们将正向泵浦的低QD RFL的泵浦方向改为反向泵浦。结果,最大信号功率提高了20%,相应的光谱纯度提高到了99.8%。这项工作为低QD RFL中的非线性效应控制提供了一种方法,这对其进一步的性能扩展至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e013/9102590/7f393d7652dd/nanomaterials-12-01490-g001.jpg

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