连续体中的元光学和束缚态(会议演讲)

K. Koshelev, S. Kruk, Y. Kivshar
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引用次数: 0

摘要

我们回顾了连续体中束缚态的物理学及其在元光学和元表面中的应用。首先,我们讨论了单个亚波长高指数介质谐振器模式之间的强耦合,并分析了谐振器长宽比变化时的模式转换和法诺共振。我们证明,当弗里德里希-温特根破坏性干扰情景导致辐射损耗几乎被抑制时,强模式耦合会产生具有高品质因数的共振,这与连续体中的束缚态物理学有关。我们的理论发现得到了具有可调长宽比的高指数亚波长谐振器散射的微波和光学实验的证实。所提出的单个亚波长高指数谐振器中的强模式耦合机制以及高品质因数谐振有助于大幅扩展全介质纳米光子学的功能,为主动和被动纳米级元器件开辟了新天地。接下来,我们将讨论连续体中的束缚态如何出现在元表面中。我们揭示了由具有破碎平面对称性的(介电或金属)元原子的看似不同晶格所形成的元表面可以支持源自连续体中束缚态物理学的尖锐高 Q 值共振。我们证明了连续体中的束缚态与法诺共振之间的直接联系,并讨论了这种元表面的一般理论,为纳米光子学和元光学中的许多应用提供了共振智能工程的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Meta-optics and bound states in the continuum (Conference Presentation)
We review the physics of bound states in the continuum and their applications in meta-optics and metasurfaces. First, we discuss strong coupling between modes of a single subwavelength high-index dielectric resonator and analyse the mode transformation and Fano resonances when resonator’s aspect ratio varies. We demonstrate that strong mode coupling results in resonances with high quality factors, which are related to the physics of bound states in the continuum when the radiative losses are almost suppressed due to the Friedrich–Wintgen scenario of destructive interference. Our theoretical findings are confirmed by microwave and optical experiments for the scattering of high-index subwavelength resonators with a tunable aspect ratio. The proposed mechanism of the strong mode coupling in single subwavelength high-index resonators accompanied by resonances with high quality factor helps to extend substantially functionalities of all-dielectric nanophotonics that opens new horizons for active and passive nanoscale metadevices. Next, we discuss how bound states in the continuum can appear in metasurfaces. We reveal that metasurfaces created by seemingly different lattices of (dielectric or metallic) meta-atoms with broken in-plane symmetry can support sharp high-Q resonances that originate from the physics of bound states in the continuum. We demonstrate a direct link between the bound states in the continuum and the Fano resonances, and discuss a general theory of such metasurfaces, suggesting the way for smart engineering of resonances for many applications in nanophotonics and meta-optics.
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