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在支持连续统中束缚态的方形开槽硅超表面中电磁诱导透明的类似物。

Analogue of electromagnetically induced transparency in square slotted silicon metasurfaces supporting 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, Dmitriev V, Zografopoulos D C

出版信息

Opt Express. 2022 Jan 31;30(3):4615-4630. doi: 10.1364/OE.446720.

DOI:10.1364/OE.446720
PMID:35209694
Abstract

In this work, a silicon metasurface designed to support electromagnetically induced transparency (EIT) based on quasi-bound states in the continuum (qBIC) is proposed and theoretically demonstrated in the near-infrared spectrum. The metasurface consists of a periodic array of square slot rings etched in a silicon layer. The interruption of the slot rings by a silicon bridge breaks the symmetry of the structure producing qBIC stemming from symmetry-protected states, as rigorously demonstrated by a group theory analysis. One of the qBIC is found to behave as a resonance-trapped mode in the perturbed metasurface, which obtains very high quality factor values at certain dimensions of the silicon bridge. Thanks to the interaction of the sharp qBIC resonances with a broadband bright background mode, sharp high-transmittance peaks are observed within a low-transmittance spectral window, thus producing a photonic analogue of EIT. Moreover, the resonator possesses a simple bulk geometry with channels that facilitate the use in biosensing. The sensitivity of the resonant qBIC on the refractive index of the surrounding material is calculated in the context of refractometric sensing. The sharp EIT-effect of the proposed metasurface, along with the associated strong energy confinement may find direct use in emerging applications based on strong light-matter interactions, such as non-linear devices, lasing, biological sensors, optical trapping, and optical communications.

摘要

在这项工作中,提出了一种基于连续体中的准束缚态(qBIC)来支持电磁诱导透明(EIT)的硅超表面,并在近红外光谱中进行了理论验证。该超表面由蚀刻在硅层中的方形槽环的周期性阵列组成。硅桥对槽环的中断打破了结构的对称性,产生了源于对称保护态的qBIC,群论分析严格证明了这一点。发现其中一个qBIC在受扰超表面中表现为共振捕获模式,在硅桥的特定尺寸下可获得非常高的品质因数。由于尖锐的qBIC共振与宽带明亮背景模式的相互作用,在低透射率光谱窗口内观察到尖锐的高透射率峰,从而产生了EIT的光子模拟。此外,该谐振器具有简单的整体几何形状和便于生物传感应用的通道。在折射传感的背景下计算了共振qBIC对周围材料折射率的灵敏度。所提出的超表面的尖锐EIT效应以及相关的强能量限制可能直接应用于基于强光-物质相互作用的新兴应用,如非线性器件、激光、生物传感器、光镊和光通信。

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