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表面等离激元晶格激光器中的自发对称性破缺

Spontaneous symmetry breaking in plasmon lattice lasers.

作者信息

de Gaay Fortman Nelson, Kolkowski Radoslaw, Pal Debapriya, Rodriguez Said R K, Schall Peter, Koenderink A Femius

机构信息

Institute of Physics, University of Amsterdam, NL1098XH Amsterdam, The Netherlands.

Department of Physics of Information in Matter and Center for Nanophotonics, NWO-I Institute AMOLF, Science Park 104, NL1098XG Amsterdam, The Netherlands.

出版信息

Sci Adv. 2024 Jul 5;10(27):eadn2723. doi: 10.1126/sciadv.adn2723.

Abstract

Spontaneous symmetry breaking (SSB) is key for our understanding of phase transitions and the spontaneous emergence of order. In this work, we report that, for a two-dimensional (2D) periodic metasurface with gain, SSB occurs in the lasing transition. We study diffractive hexagonal plasmon nanoparticle lattices, where the -points in momentum space provide two modes that are degenerate in frequency and identically distributed in space. Using femtosecond pulses to energize the gain medium, we simultaneously capture single-shot real-space and Fourier-space images of laser emission. By combining Fourier and real space, we resolve the two order parameters for which symmetry breaking simultaneously occurs: spatial parity and (1) (rotational) symmetry breaking, evident respectively as random relative mode amplitude and phase. The methodology reported in this work is generally applicable to 2D plasmonic and dielectric metasurfaces and opens numerous opportunities for the study of SSB and the emergence of spatial coherence in metaphotonics.

摘要

自发对称性破缺(SSB)是我们理解相变和有序性自发出现的关键。在这项工作中,我们报告了对于具有增益的二维(2D)周期性超表面,在激光跃迁中会发生SSB。我们研究了衍射六角形等离子体纳米颗粒晶格,其中动量空间中的Γ点提供了两种频率简并且在空间中均匀分布的模式。使用飞秒脉冲激发增益介质,我们同时捕获了激光发射的单次实空间和傅里叶空间图像。通过结合傅里叶空间和实空间,我们解析了同时发生对称性破缺的两个序参量:空间宇称和(1)(旋转)对称性破缺,分别表现为随机的相对模式振幅和相位。这项工作中报告的方法通常适用于二维等离子体和介电超表面,并为超光子学中SSB和空间相干性出现的研究开辟了众多机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fcf5/11225787/1328a3bf16f5/sciadv.adn2723-f1.jpg

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