论文标题

微孔子滤光器激光器中的耗散孤子产生和实时动力学

Dissipative soliton generation and real-time dynamics in microresonator-filtered fiber lasers

论文作者

Nie, Mingming, Li, Bowen, Jia, Kunpeng, Xie, Yijun, Yan, Jingjie, Zhu, Shining, Xie, Zhenda, Huang, Shu-Wei

论文摘要

微孔子(Microcombs)中的光频梳具有广泛的科学和技术应用,因为它的紧凑型尺寸并获得了相当大的梳子间距。尽管最近取得了成功,但对于常规的Soliton Microcombs,尚未完全解决自我启动,高模式效率和高输出功率的问题。最近通过将微孔子嵌套到纤维腔中的激光腔孤子微角色表明,这表明了解决问题的巨大潜力。在这里,我们全面研究了理论和实验中微孔子过滤纤维激光器中的耗散性孤子产生和相互作用动力学。我们首先将理论洞察力带入模式锁定原理,讨论对孤子性质的效果,并为宽带孤子产生提供实验指南。我们预测具有正常分散的微孔子中的扁平光谱包膜的chir骨散发性孤子,这对于外部驱动的情况根本上是不可行的。此外,我们在实验上实现了巨大的带宽约10 nm的孤子微核,高模式效率为90.7%。最后,通过利用超高速度放大器,我们研究了实时的孤子形成和相互作用动力学,并在实验上观察了诺顿牛顿的摇篮。我们的研究将有益于现实世界应用的新颖,高效和自我启动的微型群岛的设计。

Optical frequency combs in microresonators (microcombs) have a wide range of applications in science and technology, due to its compact size and access to considerably larger comb spacing. Despite recent successes, the problems of self-starting, high mode efficiency as well as high output power have not been fully addressed for conventional soliton microcombs. Recent demonstration of laser cavity soliton microcombs by nesting a microresonator into a fiber cavity, shows great potential to solve the problems. Here we comprehensively study the dissipative soliton generation and interaction dynamics in a microresonator-filtered fiber laser in both theory and experiment. We first bring theoretical insight into the mode-locking principle, discuss the parameters effect on soliton properties and provide experimental guidelines for broadband soliton generation. We predict chirped bright dissipative soliton with flat-top spectral envelope in microresonators with normal dispersion, which is fundamentally infeasible for externally driven case. Furthermore, we experimentally achieve soliton microcombs with large bandwidth of ~10 nm and high mode efficiency of 90.7%. Finally, by taking advantage of an ultrahigh-speed time magnifier, we study the real-time soliton formation and interaction dynamics and experimentally observe soliton Newton's cradle. Our study will benefit the design of the novel, high-efficiency and self-starting microcombs for real-world applications.

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