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Optical Properties of Complex Plasmonic Materials Studied with Extended Effective Medium Theories Combined with Rigorous Coupled Wave Analysis

机译:应用扩展有效介质理论和严格耦合波分析研究复杂等离子材料的光学性质

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摘要

In this study we fabricate gold nanocomposites and model their optical properties. The nanocomposites are either homogeneous films or gratings containing gold nanoparticles embedded in a polymer matrix. The samples are fabricated using a recently developed technique making use of laser interferometry. The gratings present original plasmon-enhanced diffraction properties. In this work, we develop a new approach to model the optical properties of our composites. We combine the extended Maxwell–Garnett model of effective media with the Rigorous Coupled Wave Analysis (RCWA) method and compute both the absorption spectra and the diffraction efficiency spectra of the gratings. We show that such a semi-analytical approach allows us to reproduce the original plasmonic features of the composites and can provide us with details about their inner structure. Such an approach, considering reasonably high particle concentrations, could be a simple and efficient tool to study complex micro-structured system based on plasmonic components, such as metamaterials.
机译:在这项研究中,我们制造了金纳米复合材料并对其光学性能进行了建模。纳米复合材料是均质膜或包含嵌入聚合物基体中的金纳米颗粒的光栅。使用最近开发的利用激光干涉术的技术来制造样品。光栅具有原始的等离激元增强衍射特性。在这项工作中,我们开发了一种对复合材料的光学性能进行建模的新方法。我们将有效介质的扩展麦克斯韦-加纳特模型与严格耦合波分析(RCWA)方法结合使用,并计算了光栅的吸收光谱和衍射效率光谱。我们表明,这种半分析方法使我们能够重现复合材料的原始等离子特征,并可以向我们提供有关其内部结构的详细信息。考虑到合理的高粒子浓度,这种方法可能是研究基于等离子成分(例如超材料)的复杂微结构系统的简单有效的工具。

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