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太赫兹超材料传感器能否通过与高Q值光子谐振器的超强耦合得到改进?

Can a terahertz metamaterial sensor be improved by ultra-strong coupling with a high-Q photonic resonator?

作者信息

Cao Lei, Jia Shanshan, Thomson Mark D, Meng Fanqi, Roskos Hartmut G

出版信息

Opt Express. 2022 Apr 11;30(8):13659-13672. doi: 10.1364/OE.456044.

Abstract

When a metamaterial (MM) is embedded in a one-dimensional photonic crystal (PC) cavity, the ultra-strong coupling between the MM plasmons and the photons in the PC cavity gives rise to two new polariton modes with high quality factor. Here, we investigate by simulations whether such a strongly coupled system working in the terahertz (THz) frequency range has the potential to be a better sensor than a MM (or a PC cavity) alone. Somewhat surprisingly, one finds that the shift of the resonance frequency induced by an analyte applied to the MM is smaller in the case of the dual resonator (MM and cavity) than that obtained with the MM alone. However, the phase sensitivity of the dual resonator can be larger than that of the MM alone. With the dielectric perturbation theory - well established in the microwave community - one can show that the size of the mode volume plays a decisive role for the obtainable frequency shift. The larger frequency shift of the MM alone is explained by its smaller mode volume as compared with the MM-loaded cavity. Two main conclusions can be drawn from our investigations. First, that the dielectric perturbation theory can be used to guide and optimize the designs of MM-based sensors. And second, that the enhanced phase sensitivity of the dual resonator may open a new route for the realization of improved THz sensors.

摘要

当一种超材料(MM)嵌入一维光子晶体(PC)腔中时,MM等离激元和PC腔中的光子之间的超强耦合会产生两种具有高品质因数的新极化激元模式。在此,我们通过模拟研究这样一个工作在太赫兹(THz)频率范围内的强耦合系统是否有可能比单独的MM(或PC腔)成为更好的传感器。有点令人惊讶的是,人们发现,在双谐振器(MM和腔)的情况下,施加到MM上的分析物引起的共振频率偏移比单独使用MM时要小。然而,双谐振器的相位灵敏度可能比单独的MM更大。利用微波领域中已确立的介电微扰理论,可以表明模式体积的大小对可获得的频率偏移起着决定性作用。与加载MM的腔相比,单独的MM具有更大的频率偏移是因为其模式体积更小。从我们的研究中可以得出两个主要结论。第一,介电微扰理论可用于指导和优化基于MM的传感器的设计。第二,双谐振器增强的相位灵敏度可能为实现改进的太赫兹传感器开辟一条新途径。

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