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具有连续统中对称性保护束缚态的强共振硅槽超表面

Strongly resonant silicon slot metasurfaces with symmetry-protected bound states in the continuum.

作者信息

Algorri J F, Dell'Olio F, Roldán-Varona P, Rodríguez-Cobo L, López-Higuera J M, Sánchez-Pena J M, Zografopoulos D C

出版信息

Opt Express. 2021 Mar 29;29(7):10374-10385. doi: 10.1364/OE.415377.

Abstract

In this work, a novel all-dielectric metasurface made of arrayed circular slots etched in a silicon layer is proposed and theoretically investigated. The structure is designed to support both Mie-type multipolar resonances and symmetry-protected bound states in the continuum (BIC). Specifically, the metasurface consists of interrupted circular slots, following the paradigm of complementary split-ring resonators. This configuration allows both silicon-on-glass and free-standing metasurfaces and the arc length of the split-rings provides an extra tuning parameter. The nature of both BIC and non-BIC resonances supported by the metasurface is investigated by employing the Cartesian multipole decomposition technique. Thanks to the non-radiating nature of the quasi-BIC resonance, extremely high Q-factor responses are calculated, both by fitting the simulated transmittance spectra to an extended Fano model and by an eigenfrequency analysis. Furthermore, the effect of optical losses in silicon on quenching the achievable Q-factor values is discussed. The metasurface features a simple bulk geometry and sub-wavelength dimensions. This novel device, its high Q-factors, and strong energy confinement open new avenues of research on light-matter interactions in view of new applications in non-linear devices, biological sensors, and optical communications.

摘要

在这项工作中,提出并从理论上研究了一种由蚀刻在硅层中的阵列圆形槽构成的新型全介质超表面。该结构被设计为既能支持米氏型多极共振,又能支持连续统中的对称保护束缚态(BIC)。具体而言,该超表面由间断的圆形槽组成,遵循互补分裂环谐振器的模式。这种配置允许玻璃上硅和独立式超表面,并且分裂环的弧长提供了一个额外的调谐参数。通过采用笛卡尔多极分解技术研究了超表面所支持的BIC和非BIC共振的性质。由于准BIC共振的非辐射性质,通过将模拟透射光谱拟合到扩展的法诺模型以及通过本征频率分析,计算出了极高的品质因数响应。此外,还讨论了硅中的光学损耗对淬灭可实现的品质因数值的影响。该超表面具有简单的整体几何形状和亚波长尺寸。鉴于在非线性器件、生物传感器和光通信中的新应用,这种新型器件、其高品质因数和强能量限制为光与物质相互作用的研究开辟了新途径。

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