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用于高功率运行的3.5微米掺铒ZBLAN光纤激光器的泵浦量子效率优化

Pump quantum efficiency optimization of 3.5 μm Er-doped ZBLAN fiber laser for high-power operation.

作者信息

Zhang Lu, Fu Shijie, Sheng Quan, Luo Xuewen, Zhang Junxiang, Shi Wei, Yao Jianquan

机构信息

Institute of Laser and Optoelectronics, School of Precision Instrument and Optoelectronics Engineering, Tianjin University, Tianjin, 300072, China.

Key Laboratory of Opto-Electronic Information Technology, Ministry of Education, Tianjin University, Tianjin, 300072, China.

出版信息

Front Optoelectron. 2023 Nov 9;16(1):33. doi: 10.1007/s12200-023-00089-w.

Abstract

976 nm + 1976 nm dual-wavelength pumped Er-doped ZBLAN fiber lasers are generally accepted as the preferred solution for achieving 3.5 μm lasing. However, the 2 μm band excited state absorption from the upper lasing level (F → F) depletes the Er ions population inversion, reducing the pump quantum efficiency and limiting the power scaling. In this work, we demonstrate that the pump quantum efficiency can be effectively improved by using a long-wavelength pump with lower excited state absorption rate. A 3.5 μm Er-doped ZBLAN fiber laser was built and its performances at different pump wavelengths were experimentally investigated in detail. A maximum output power at 3.46 μm of ~ 7.2 W with slope efficiency (with respect to absorbed 1990 nm pump power) of 41.2% was obtained with an optimized pump wavelength of 1990 nm, and the pump quantum efficiency was increased to 0.957 compared with the 0.819 for the conventional 1976 nm pumping scheme. Further power scaling was only limited by the available 1990 nm pump power. A numerical simulation was implemented to evaluate the cross section of excited state absorption via a theoretical fitting of experimental results. The potential of further power scaling was also discussed, based on the developed model.

摘要

976纳米 + 1976纳米双波长泵浦掺铒ZBLAN光纤激光器通常被认为是实现3.5微米激光发射的首选解决方案。然而,从激光上能级(F→F)的2微米波段激发态吸收会耗尽铒离子的粒子数反转,降低泵浦量子效率并限制功率扩展。在这项工作中,我们证明通过使用具有较低激发态吸收率的长波长泵浦可以有效提高泵浦量子效率。搭建了一台3.5微米掺铒ZBLAN光纤激光器,并详细实验研究了其在不同泵浦波长下的性能。在优化泵浦波长为1990纳米时,获得了3.46微米处的最大输出功率约7.2瓦,斜率效率(相对于吸收的1990纳米泵浦功率)为41.2%,并且泵浦量子效率从传统1976纳米泵浦方案的0.819提高到了0.957。进一步的功率扩展仅受可用的1990纳米泵浦功率限制。通过对实验结果进行理论拟合实施了数值模拟,以评估激发态吸收截面。基于所建立的模型还讨论了进一步功率扩展的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/191e/10635972/89460b4b2936/12200_2023_89_Fig1_HTML.jpg

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