论文标题

对明亮耗散性的kerr腔孤子子及其在正常分散的驱动谐振器中崩溃的实验观察结果

Experimental observations of bright dissipative Kerr cavity solitons and their collapsed snaking in a driven resonator with normal dispersion

论文作者

Li, Zongda, Coen, Stéphane, Murdoch, Stuart G., Erkintalo, Miro

论文摘要

驱动的KERR非线性光谐振器可以维持称为耗散的Kerr腔孤子的局部结构,这些结构最近引起了微孔子光学频率梳子的时间对应物的极大关注。尽管传统的智慧断言,明亮的空腔孤子只能存在于异常分散区域,但最近的理论研究预测,高阶分散体可以从根本上改变这种情况,即使在正常分散驱动的条件下,也可以实现明亮的局部结构。在这里,我们展示了一个灵活的光纤环谐振器平台,该平台提供了对分散条件的前所未有的控制,我们报告了对明亮局部结构的首次实验观察,这些观察是通过高阶分散剂从根本上启用的。在与过去的理论预测的广泛一致之中,我们发现几种不同的明亮结构可以共存相同的参数,并且我们观察到它们崩溃的缝隙结构的实验证据。除了对许多理论预测进行直接的实验验证外,我们还表明,明智地控制分散条件的能力为超静脉脉冲产生的新途径提供了新的途径:我们工作中观察到的明亮结构对应于220 〜fs的光脉冲,这是一个被动的全纤维环响声器的记录。我们设想我们的工作将刺激有关高阶分散体对Kerr腔动力学影响的进一步基础研究,并指导新型超短脉冲源和分散工程化的微孔子频率梳子的发展。

Driven Kerr nonlinear optical resonators can sustain localized structures known as dissipative Kerr cavity solitons, which have recently attracted significant attention as the temporal counterparts of microresonator optical frequency combs. Whilst conventional wisdom asserts that bright cavity solitons can only exist in the region of anomalous dispersion, recent theoretical studies have predicted that higher-order dispersion can fundamentally alter the situation, enabling bright localized structures even under conditions of normal dispersion driving. Here we demonstrate a flexible optical fibre ring resonator platform that offers unprecedented control over dispersion conditions, and we report on the first experimental observations of bright localized structures that are fundamentally enabled by higher-order dispersion. In broad agreement with past theoretical predictions, we find that several distinct bright structures can co-exist for the same parameters, and we observe experimental evidence of their collapsed snaking bifurcation structure. In addition to enabling direct experimental verifications of a number of theoretical predictions, we show that the ability to judiciously control the dispersion conditions offers a novel route for ultrashort pulse generation: the bright structures observed in our work correspond to pulses of light as short as 220~fs -- the record for a passive all-fibre ring resonator. We envisage that our work will stimulate further fundamental studies on the impact of higher-order dispersion on Kerr cavity dynamics, as well as guide the development of novel ultrashort pulse sources and dispersion-engineered microresonator frequency combs.

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