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Enhancement of Long-Range Surface Plasmon Excitation, Dynamic Range and Figure of Merit Using a Dielectric Resonant Cavity

机译:使用介电谐振腔增强远程表面等离子体激发,动态范围和功绩的关系

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摘要

In this paper, we report a theoretical framework on the effect of multiple resonances inside the dielectric cavity of insulator-insulator-metal-insulator (IIMI)-based surface plasmon sensors. It has been very well established that the structure can support both long-range surface plasmon polaritons (LRSPP) and short-range surface plasmon polaritons (SRSPP). We found that the dielectric resonant cavity under certain conditions can be employed as a resonator to enhance the LRSPP properties. These conditions are: (1) the refractive index of the resonant cavity was greater than the refractive index of the sample layer and (2) when light propagated in the resonant cavity and was evanescent in the sample layer. We showed through the analytical calculation using Fresnel equations and rigorous coupled wave theory that the proposed structure with the mentioned conditions can extend the dynamic range of LRSPP excitation and enhance at least five times more plasmon intensity on the surface of the metal compared to the surface plasmon excited by the conventional Kretschmann configuration. It can enhance the dip sensitivity and the dynamic range in refractive index sensing without losing the sharpness of the LRSPP dip. We also showed that the interferometric modes in the cavity can be insensitive to the surface plasmon modes. This allowed a self-referenced surface plasmon resonance structure, in which the interferometric mode measured changes in the sensor structure and the enhanced LRSPP measured changes in the sample channel.
机译:在本文中,我们报道了一种理论框架,了解绝缘体 - 绝缘体 - 金属 - 绝缘体(IIMI)的表面等离子体传感器的介电腔内的多个共振的影响。已经完美地确定了该结构可以支持远程表面等离子体(LRSPP)和短距离表面等离子体Polaritons(SRSPP)。我们发现,在某些条件下的介电谐振腔可用作谐振器以增强LRSPP性能。这些条件是:(1)当在谐振腔中传播的光并在样品层中渐变时,谐振腔的折射率大于样品层的折射率和(2)。我们通过使用菲涅耳方程和严格的耦合波理论来显示分析计算,即所提出的条件的所提出的结构可以延长LRSPP激励的动态范围,并与表面等离子体相比,金属表面上的等离子体强度提高至少五倍的等离子体强度。由传统的Kretschmann配置激发。它可以提高折射率感测的浸渍敏感性和动态范围,而不会失去LRSPP DIP的锐度。我们还表明,腔中的干涉式模式可以对表面等离子体模式不敏感。这允许自引用的表面等离子体谐振结构,其中干涉测量模式测量传感器结构的变化和样本通道中的增强的LRSPP测量变化。

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