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Tubular optical microcavities of indefinite medium for sensitive liquid refractometers

机译:不确定液体介质的管状光学微腔,用于敏感液体折光仪

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Optical microcavities enable circulated light to intensively interact with a detecting liquid, thus promising high sensitivity in fluidic refractometers. Based on Mie scattering theory, we propose a tubular metamaterial device for liquid sensing, which utilizes anisotropic metamaterials with hyperbolic dispersion called indefinite media (IM). Besides traditional whispering gallery modes (WGMs), such tubular cavities can support surface plasmon polariton (SPP) WGMs, enabling high sensitivity liquid detection. Three configurations of such metamaterial tubes for sensing are discussed: tube-in-liquid, hollow-tube-in-liquid and liquid-in-tube; these are analyzed using numerical formulas and compared with dielectric and metal materials. Compared with traditional dielectric media (DM), the IM tubular cavity exhibits a higher sensitivity (S), which is close to that of a metal tubular cavity. However, compared with metal media, such an IM cavity can achieve higher quality (Q) factors similar to the DM tubular cavity. Therefore, the IM tubular cavity can offer the highest figures of merit (QS) for the sensing performance among the three types of materials. Our results suggest a novel tubular optofluidic device based on metamaterials, which could be useful for liquid refractometers.
机译:光学微腔使循环光能够与检测液体强烈相互作用,因此有望在流体折光仪中实现高灵敏度。基于米氏散射理论,我们提出了一种用于液体传感的管状超材料装置,该装置利用具有双曲线分散性的各向异性超材料(称为不定介质(IM))。除了传统的回音壁模式(WGM),此类管状空腔还可以支持表面等离激元极化(SPP)WGM,从而实现了高灵敏度的液体检测。讨论了这种用于感测的超材料管的三种配置:液体管,液体中空管和液体管;使用数值公式对它们进行分析,并与电介质和金属材料进行比较。与传统的介电介质(DM)相比,IM管状腔具有更高的灵敏度(S),接近​​于金属管状腔。但是,与金属介质相比,这种IM腔可以实现类似于DM管状腔的更高质量(Q)因子。因此,IM管状腔体可以为三种材料提供最高的感测性能指标(QS)。我们的结果提出了一种基于超材料的新型管状光流体装置,可用于液体折光仪。

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