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Nanoparticle Electromagnetic Properties for Sensing Applications

机译:用于传感应用的纳米粒子电磁特性

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Nanoparticles play a crucial role in biomedical and sensing applications. In this paper the design of non-spherical gold nanoparticles, operating in the near infrared and visible regime, is proposed. The structures consist of metallic resonating inclusions of different shapes embedded in a dielectric environment. Different geometries, such as cube, elliptical cylinder and rod are considered. The main purpose of this study is to develop new analytical formulas useful in the nanoparticle design for specific biomedical and sensing applications. These analytical models are developed in order to describe the electromagnetic behavior of the nanoparticles in terms of resonant wavelength position, magnitude and amplitude width for absorption and scattering cross section. The obtained results are compared to the numerical ones, performed by full-wave simulations, and to the experimental values existing in literature. A good agreement among analytical, experimental and numerical results was obtained. Then, the structure is analyzed in terms of sensitivity properties. Exploiting the proposed analytical models, it is possible to design the nanostructures with the desired electromagnetic properties. The results show that these structures can be successfully applied for sensing applications.
机译:纳米颗粒在生物医学和传感应用中起着至关重要的作用。本文提出了在近红外和可见光条件下工作的非球形金纳米颗粒的设计。这些结构由嵌入电介质环境中的不同形状的金属谐振夹杂物组成。考虑了不同的几何形状,例如立方体,椭圆圆柱和杆。这项研究的主要目的是开发可用于特定生物医学和传感应用的纳米颗粒设计的新分析公式。开发这些分析模型是为了根据吸收和散射截面的共振波长位置,幅度和幅度宽度来描述纳米粒子的电磁行为。将获得的结果与通过全波模拟执行的数值结果进行比较,并与文献中存在的实验值进行比较。在分析,实验和数值结果之间取得了良好的一致性。然后,根据灵敏度特性对结构进行分析。利用提出的分析模型,可以设计具有所需电磁特性的纳米结构。结果表明,这些结构可以成功地应用于传感应用。

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