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锁模光纤激光器中耗散孤子消逝过程中的瞬态呼吸动力学。

Transient breathing dynamics during extinction of dissipative solitons in mode-locked fiber lasers.

作者信息

Yuan Zichuan, Luo Si, Dai Ke, Yao Xiankun, Tao Chenning, Ling Qiang, Zhang Yusheng, Guan Zuguang, Chen Daru, Cui Yudong

机构信息

Hangzhou Institute of Advanced Studies, Zhejiang Normal University, Hangzhou, 311231, China.

Key Laboratory of Optical Information Detection and Display Technology of Zhejiang, Zhejiang Normal University, Jinhua, 321004, China.

出版信息

Front Optoelectron. 2024 Jan 19;17(1):2. doi: 10.1007/s12200-024-00106-6.

Abstract

The utilization of the dispersive Fourier transformation approach has enabled comprehensive observation of the birth process of dissipative solitons in fiber lasers. However, there is still a dearth of deep understanding regarding the extinction process of dissipative solitons. In this study, we have utilized a combination of experimental and numerical techniques to thoroughly examine the breathing dynamics of dissipative solitons during the extinction process in an Er-doped mode-locked fiber laser. The results demonstrate that the transient breathing dynamics have a substantial impact on the extinction stage of both steady-state and breathing-state dissipative solitons. The duration of transient breathing exhibits a high degree of sensitivity to variations in pump power. Numerical simulations are utilized to produce analogous breathing dynamics within the framework of a model that integrates equations characterizing the population inversion in a mode-locked laser. These results corroborate the role of Q-switching instability in the onset of breathing oscillations. Furthermore, these findings offer new possibilities for the advancement of various operational frameworks for ultrafast lasers.

摘要

色散傅里叶变换方法的应用使得对光纤激光器中耗散孤子产生过程的全面观测成为可能。然而,对于耗散孤子的消亡过程仍缺乏深入的理解。在本研究中,我们结合实验和数值技术,全面研究了掺铒锁模光纤激光器中耗散孤子在消亡过程中的呼吸动力学。结果表明,瞬态呼吸动力学对稳态和呼吸态耗散孤子的消亡阶段都有重大影响。瞬态呼吸的持续时间对泵浦功率的变化表现出高度敏感性。利用数值模拟在一个整合了描述锁模激光器中粒子数反转方程的模型框架内产生类似的呼吸动力学。这些结果证实了Q开关不稳定性在呼吸振荡起始中的作用。此外,这些发现为超快激光器各种运行框架的发展提供了新的可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/87fb/10798939/eacba7b66026/12200_2024_106_Fig1_HTML.jpg

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