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用于太赫兹生物传感的同时支持连续谱中的准束缚态和无偶极模式的非对称哑铃二聚体

Asymmetric dumbbell dimers simultaneously supporting quasi-bound states in continuum and anapole modes for terahertz biosensing.

作者信息

Feng Jixin, Wang Xianghui, Shi Weinan, Ma Liang, Ji Yunyun, Fan Fei, Chang Shengjiang

机构信息

Institute of Modern Optics, Nankai University, Tianjin, China.

出版信息

Nanophotonics. 2024 Aug 1;13(21):4007-4017. doi: 10.1515/nanoph-2024-0254. eCollection 2024 Sep.

Abstract

Multi-resonant metasurfaces are of great significance in the applications of multi-band nanophotonics. Here, we propose a novel metasurface design scheme for simultaneously supporting quasi-bound states in continuum (QBIC) and other resonant modes, in which QBIC resonance is generated by mirror or rotational symmetry breaking in oligomers while other resonant modes can be simultaneously excited by rationally designing the shapes of meta-atoms within oligomers. As an example, the simultaneous excitation of QBIC and anapole modes are demonstrated in a dimer metasurface composed of asymmetric dumbbell-shaped apertures. Based on the far-field multipole decomposition and near-field electromagnetic field distributions, the origin mechanisms of QBIC and anapole mode are elucidated. The symmetry breaking of dumbbell-shaped dimer results in QBIC. Within a certain asymmetric variation range, the contributions of toroidal dipole moment and electric dipole moment with approximately equal magnitudes remain dominant, which allows the anapole mode to always present. The effectiveness of the proposed design scheme is further confirmed by the experimental results identical with the evolutions of numerical simulation. In terahertz biosensing experiments, the anapole mode exhibits a higher sensitivity of 271.3 GHz (nmol/μl), whereas the QBIC can achieve a lower detection limit of 0.015 nmol/μl and expands the detection range by almost an order of magnitude. Our findings are beneficial to designing multi-resonant metasurfaces with different resonance modes and promote the corresponding applications in the fields of biosensing, lasers, filtering, and nonlinearity.

摘要

多谐振超表面在多波段纳米光子学应用中具有重要意义。在此,我们提出一种新颖的超表面设计方案,用于同时支持连续统中的准束缚态(QBIC)和其他谐振模式,其中QBIC共振由低聚物中的镜像或旋转对称性破缺产生,而其他谐振模式可通过合理设计低聚物内元原子的形状同时激发。例如,在由不对称哑铃形孔径组成的二聚体超表面中展示了QBIC和anapole模式的同时激发。基于远场多极分解和近场电磁场分布,阐明了QBIC和anapole模式的起源机制。哑铃形二聚体的对称性破缺导致了QBIC。在一定的不对称变化范围内,大小近似相等的环形偶极矩和电偶极矩的贡献保持主导地位,这使得anapole模式始终存在。与数值模拟演变一致的实验结果进一步证实了所提出设计方案的有效性。在太赫兹生物传感实验中,anapole模式表现出271.3 GHz(nmol/μl)的更高灵敏度,而QBIC可实现0.015 nmol/μl的更低检测限,并将检测范围扩大了近一个数量级。我们的发现有助于设计具有不同谐振模式的多谐振超表面,并推动其在生物传感、激光、滤波和非线性等领域的相应应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a282/11501055/dfa860736adc/j_nanoph-2024-0254_fig_001.jpg

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