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全介质超表面中连续态准束缚态下纳米间隙对折射灵敏度的增强作用。

Nanogap enhancement of the refractometric sensitivity at quasi-bound states in the continuum in all-dielectric metasurfaces.

作者信息

Watanabe Keisuke, Iwanaga Masanobu

机构信息

International Center for Young Scientists (ICYS), National Institute for Materials Science (NIMS), 1-1 Namiki, Tsukuba, Ibaraki 305-0044, Japan.

Research Center for Functional Materials, National Institute for Materials Science (NIMS), 1-1 Namiki, Tsukuba, Ibaraki 305-0044, Japan.

出版信息

Nanophotonics. 2023 Jan 3;12(1):99-109. doi: 10.1515/nanoph-2022-0565. eCollection 2023 Jan.

Abstract

All-dielectric metasurfaces have great potential as highly sensitive refractometric sensors relying on their spectral shifts because of an extensive range of design flexibilities and their smaller absorption losses than plasmonic platforms. However, simultaneously realizing both high quality () factors and the large interplay of light with external medium in such photonic sensors remains one of the key challenges for their better performance. This study proposes silicon block metasurfaces with nanogaps to overcome this challenge based on quasi-bound states in the continuum (BICs). We show that the metasurface has two quasi-BIC modes-magnetic dipole (MD) and electric quadrupole (EQ)-and their electric fields experience large enhancement at the ∼30 nm nanogap regions. Consequently, introducing nanogaps into the metasurfaces increases the environmental refractive index sensitivity by up to 2.7 times in the MD mode while keeping the high factors and achieves the figure-of-merit (FOM) of 239. In addition, we show that the appropriate selection of the amount of asymmetry is needed under the trade-off between the FOM and spectral signal-to-noise ratio, which provides design guidelines for highly sensitive biosensors based on quasi-BICs.

摘要

全介质超表面作为高灵敏度折射传感器具有巨大潜力,这得益于其广泛的设计灵活性以及比等离子体平台更小的吸收损耗,使其能够依靠光谱位移来工作。然而,在这种光子传感器中同时实现高品质()因子以及光与外部介质的大相互作用,仍然是实现其更好性能的关键挑战之一。本研究基于连续统中的准束缚态(BICs)提出了具有纳米间隙的硅块超表面来克服这一挑战。我们表明,该超表面具有两种准BIC模式——磁偶极(MD)和电四极(EQ)——并且它们的电场在约30纳米的纳米间隙区域会经历大幅增强。因此,在超表面中引入纳米间隙可使MD模式下的环境折射率灵敏度提高多达2.7倍,同时保持高 因子,并实现239的品质因数(FOM)。此外,我们表明,在FOM与光谱信噪比之间的权衡下,需要适当选择不对称量,这为基于准BICs的高灵敏度生物传感器提供了设计指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a85a/11501443/33c5b29451f6/j_nanoph-2022-0565_fig_001.jpg

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