Deng Ting, Peng Chen, He Junzhang, Chang Yan, Zhu Yanlin, Xiang Jin
Opt Express. 2024 Mar 25;32(7):11193-11201. doi: 10.1364/OE.518062.
Bound states in the continuum (BICs) allow to obtain an ultrahigh-quality-factor optical cavity. Nevertheless, BICs must be extended in one or more directions, substantially increasing the device footprint. Although super-cavity mode quasi-BICs supported by single nanopillars have been demonstrated recently, their low-quality factor and localized electromagnetic field inside the dielectric nanopillar are insufficient for high-sensitivity refractive index sensing applications. We propose a ring structure rotated by a dielectric sectorial nanostructure, which can achieve a high quality factor by breaking the rotational symmetry of the ring structure with a footprint as small as 3 µm. As a straightforward application, we demonstrate high performance local refractive index and nanoscale film thickness sensing based on rotational symmetry breaking induced BICs. These BICs reach quality factor and sensitivity of one order of magnitude better than those of conventional super-cavity mode BICs. The proposed method provides insights into the design of compact high quality factor photonic devices, opening up new possibilities for applications in refractive index and nanoscale film thickness sensing.
连续域束缚态(BICs)能够实现超高品质因数的光学腔。然而,BICs必须在一个或多个方向上扩展,这会大幅增加器件的占地面积。尽管最近已证明由单个纳米柱支持的超腔模准BICs,但它们的低品质因数以及介电纳米柱内部的局部电磁场不足以用于高灵敏度折射率传感应用。我们提出一种由介电扇形纳米结构旋转而成的环形结构,通过打破环形结构的旋转对称性,该结构能够在仅3 µm的小尺寸下实现高品质因数。作为一个直接的应用,我们展示了基于旋转对称性破缺诱导的BICs的高性能局部折射率和纳米级薄膜厚度传感。这些BICs的品质因数和灵敏度比传统超腔模BICs高出一个数量级。所提出的方法为紧凑型高品质因数光子器件的设计提供了思路,为折射率和纳米级薄膜厚度传感应用开辟了新的可能性。