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双组分克尔谐振器中耗散光学孤子的自发对称性破缺

Spontaneous symmetry breaking of dissipative optical solitons in a two-component Kerr resonator.

作者信息

Xu Gang, Nielsen Alexander U, Garbin Bruno, Hill Lewis, Oppo Gian-Luca, Fatome Julien, Murdoch Stuart G, Coen Stéphane, Erkintalo Miro

机构信息

Department of Physics, University of Auckland, Auckland, New Zealand.

The Dodd-Walls Centre for Photonic and Quantum Technologies, Auckland, New Zealand.

出版信息

Nat Commun. 2021 Jun 29;12(1):4023. doi: 10.1038/s41467-021-24251-0.

Abstract

Dissipative solitons are self-localized structures that can persist indefinitely in open systems driven out of equilibrium. They play a key role in photonics, underpinning technologies from mode-locked lasers to microresonator optical frequency combs. Here we report on experimental observations of spontaneous symmetry breaking of dissipative optical solitons. Our experiments are performed in a nonlinear optical ring resonator, where dissipative solitons arise in the form of persisting pulses of light known as Kerr cavity solitons. We engineer symmetry between two orthogonal polarization modes of the resonator and show that the solitons of the system can spontaneously break this symmetry, giving rise to two distinct but co-existing vectorial solitons with mirror-like, asymmetric polarization states. We also show that judiciously applied perturbations allow for deterministic switching between the two symmetry-broken dissipative soliton states. Our work delivers fundamental insights at the intersection of multi-mode nonlinear optical resonators, dissipative structures, and spontaneous symmetry breaking, and expands upon our understanding of dissipative solitons in coherently driven Kerr resonators.

摘要

耗散孤子是一种自局域化结构,能够在远离平衡态的开放系统中无限持续存在。它们在光子学中起着关键作用,支撑着从锁模激光器到微谐振器光学频率梳等一系列技术。在此,我们报告耗散光孤子自发对称性破缺的实验观测结果。我们的实验在非线性光学环形谐振器中进行,其中耗散孤子以被称为克尔腔孤子的持续光脉冲形式出现。我们设计了谐振器两个正交偏振模式之间的对称性,并表明系统中的孤子能够自发打破这种对称性,产生两种不同但共存的具有镜面对称、不对称偏振态的矢量孤子。我们还表明,明智地施加微扰能够实现两种对称性破缺的耗散孤子态之间的确定性切换。我们的工作在多模非线性光学谐振器、耗散结构和自发对称性破缺的交叉领域提供了基本见解,并拓展了我们对相干驱动克尔谐振器中耗散孤子的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/12bb/8242005/bc092562e108/41467_2021_24251_Fig1_HTML.jpg

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