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Rayleigh-Wood anomaly approximation with FDTD simulation of plasmonic gold nanohole array for determination of optimum extraordinary optical transmission characteristics

机译:用等离激元金纳米孔阵列的FDTD模拟进行的瑞利伍德异常逼近,以确定最佳的非凡光学传输特性

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摘要

Light confinement in small volumes remains one of the old and important challenges in the realm of optics. One of the widely studied phenomena of light confinement is extraordinary optical transmission (EOT) through holes with a radius much smaller than the wavelength of light. However little work has been done to provide a phenomenological study detailing underpinnings of the numerical evaluation. To this end, we investigate the Rayleigh-Wood anomalies arising from a plasmonic gold thin film nanohole array on glass through theoretical calculations and FDTD simulations. Theoretical investigation of Rayleigh-Wood anomaly provides an approximation of optical transmission features independent of hole geometrical shape. A discussion is presented on the relation between EOT and Q-factor at various orders. A rational is provided as to why elliptical (i.e round and anisotropic) nanohole array leads to optimum transmission characteristics. It is expected that our results will have an important role in the characterization and optimization of EOT based nanophotonic devices such as plasmonic biosensors, photovoltaics, IR detectors and rotation sensors.
机译:小体积的光限制仍然是光学领域的主要挑战之一。广泛研究的光限制现象之一是通过半径远小于光波长的孔的非凡光学传输(EOT)。但是,很少有工作提供现象学研究,详细介绍数值评估的基础。为此,我们通过理论计算和FDTD仿真研究了由玻璃上的等离激元金薄膜纳米孔阵列引起的Rayleigh-Wood异常。 Rayleigh-Wood异常的理论研究提供了与孔几何形状无关的光学传输特征的近似值。讨论了各种顺序的EOT和Q因子之间的关系。对于椭圆形(即圆形和各向异性)纳米孔阵列为何导致最佳透射特性提供了合理的解释。预期我们的结果将在基于EOT的纳米光子器件(例如等离子生物传感器,光伏,红外探测器和旋转传感器)的表征和优化中发挥重要作用。

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