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Investigation of plasmon resonances in metal films with nanohole arrays for biosensing applications

机译:具有纳米孔阵列的金属膜在生物传感应用中的等离子体激元共振研究

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Biosensing with nanoholes is one of the most promising applications of nanoplasmonic devices. The sensor properties, however, are complex due to coupled resonances through propagating and localized surface plasmons. This Full Paper demonstrates experimental and simulation studies on different plasmonic hole systems, namely various patterns of circular holes in gold films. In contrast to most previous work, here, the challenging situation of optically thin films is considered. The refractive-index-sensing properties, such as sensitive locations in the nanostructure and sensitive spectral features, are investigated. The multiple multipole program provides the complete field distribution in the nanostructure for different wavelengths. It is shown that the spectral feature most sensitive to refractive-index changes is the extinction minimum, rather than the maximum. The results are consistent with theory for perfect electrical conductors. The spectral response is investigated for molecular adsorption at different positions inside or outside a hole. Furthermore, the optical properties of nanohole arrays with long-range and short-range order are compared and found to demonstrate remarkable similarities. Our results help to predict the resonance wavelengths of nanoholes with arbitrary patterns, including short-range order. The results presented here are highly important since they extend and challenge several aspects of the current understanding of plasmon resonances in nanohole arrays. These theoretical models, simulation results, and experimental data together help provide the understanding necessary for the development of efficient biomolecular analysis tools based on metallic nanoholes.
机译:纳米孔的生物传感是纳米等离子体设备最有前途的应用之一。然而,由于通过传播和局部表面等离子体激元的耦合共振,传感器的特性很复杂。这篇完整的论文展示了在不同等离激元空穴系统上的实验和模拟研究,即在金膜中的各种圆形空穴模式。与大多数以前的工作相比,这里考虑了光学薄膜的挑战性情况。研究了折射率传感特性,例如纳米结构中的敏感位置和敏感的光谱特征。多极杆程序可为不同波长的纳米结构提供完整的场分布。结果表明,对折射率变化最敏感的光谱特征是消光最小值,而不是最大值。结果与理想电导体的理论一致。研究了在孔内或孔外不同位置的分子吸附的光谱响应。此外,比较了具有远距离和近距离有序的纳米孔阵列的光学性质,发现它们具有显着的相似性。我们的结果有助于预测具有任意模式(包括短程有序)的纳米孔的共振波长。这里介绍的结果非常重要,因为它们扩展并挑战了当前对纳米孔阵列中的等离子体激元共振的理解的几个方面。这些理论模型,模拟结果和实验数据共同为开发基于金属纳米孔的高效生物分子分析工具提供了必要的认识。

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