Current Status and Prospects of High-Power Fiber Laser Technology (Invited Paper)

Youngchul Kwon, Kyoungyoon Park, Dongyeul Lee, HanByul Chang, Seungjong Lee, L. A. Vazquez-Zuniga, Y. S. Lee, D. H. Kim, Hyuntae Kim, Y. Jeong
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引用次数: 1

Abstract

Over the past two decades, fiber-based lasers have made remarkable progress, now having reached power levels exceeding kilowatts and drawing a huge amount of attention from academy and industry as a replacement technology for bulk lasers. In this paper we review the significant factors that have led to the progress of fiber lasers, such as gain-fiber regimes based on ytterbium-doped silica, optical pumping schemes through the combination of laser diodes and double-clad fiber geometries, and tandem schemes for minimizing quantum defects. Furthermore, we discuss various power-limitation issues that are expected to incur with respect to the ultimate power scaling of fiber lasers, such as efficiency degradation, thermal hazard, and system-instability growth in fiber lasers, and various relevant methods to alleviate the aforementioned issues. This discussion includes fiber nonlinear effects, fiber damage, and modal-instability issues, which become more significant as the power level is scaled up. In addition, we also review beam-combining techniques, which are currently receiving a lot of attention as an alternative solution to the power-scaling limitation of high-power fiber lasers. In particular, we focus more on the discussion of the schematics of a spectral beam-combining system and their individual requirements. Finally, we discuss prospects for the future development of fiber laser technologies, for them to leap forward from where they are now, and to continue to advance in terms of their power scalability.
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高功率光纤激光器技术的现状与展望(特邀论文)
在过去的二十年里,基于光纤的激光器取得了显著的进步,现在已经达到了超过千瓦的功率水平,并作为体激光器的替代技术引起了学术界和工业界的极大关注。本文综述了导致光纤激光器发展的重要因素,如基于掺镱二氧化硅的增益-光纤体制,通过激光二极管和双包层光纤几何形状组合的光泵浦方案,以及最小化量子缺陷的串联方案。此外,我们还讨论了光纤激光器的最终功率缩放可能导致的各种功率限制问题,例如光纤激光器的效率下降、热危害和系统不稳定性增长,以及缓解上述问题的各种相关方法。本讨论包括光纤非线性效应、光纤损伤和模态不稳定性问题,这些问题随着功率水平的增大而变得更加重要。此外,我们还回顾了光束组合技术,这是目前受到广泛关注的一种解决高功率光纤激光器功率缩放限制的替代方案。特别地,我们更多地集中讨论了光谱波束组合系统的原理图及其各自的要求。最后,我们讨论了光纤激光技术的未来发展前景,使其从现在的位置飞跃,并在其功率可扩展性方面继续前进。
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