电磁耦合金纳米粒子

Ludmila Illyashenko-Raguin
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引用次数: 0

摘要

目前人们对金纳米粒子在天线设计、光学传感、光学质量控制、生物技术和医学诊断等方面的应用非常感兴趣,这是基于它们共振增强的散射特性。当两个纳米粒子放置得足够近时,就会产生新的耦合诱导光学性质,这是为研究单个粒子而开发的数值模拟算法无法研究的。在这项工作中,该算法被开发用于研究纳米粒子的二聚体。考虑到两个耦合的纳米粒子可以形成异质二聚体,即不同尺寸、不同形状、不同材料的粒子二聚体。此外,假设每个纳米颗粒的位置和方向是固定的,考虑到光源的参数,如光源位置、激发波长和照明方向可以变化。采用了谱边界积分方程法,这是一种非常有用和通用的求解电磁传输问题的方法。虽然该方法包含基于奇点划分的解析正则化,但由于不包含奇点,因此不需要对负责纳米颗粒耦合的核进行正则化。开发的算法允许计算耦合金纳米粒子在不同波长下的散射特性。这组数值实验建立了用于设计规则的数学关系,定性地描述了二聚体和非对称异二聚体之间的等离子体耦合作为取向和粒子间距离的函数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electromagnetically Coupled Au Nanoparticles
The current intense interest in the properties of gold nanoparticles for their applications in antenna design, optical sensing, optical quality control, biotechnology and medical diagnostics is currently based on their resonantly enhanced scattering properties. When two nanoparticles are put close enough, it results in novel coupling induced optical properties, which is not possible to investigate with numerical simulation algorithms, developed for investigation of single particle. In this work the algorithm was developed to investigate dimer of nanoparticles. It was taken into account that two coupled nanoparticles may form a heretodimer, namely dimer of particles of different size, different shape, different materials. In addition, assuming that position and orientation of each nanoparticle are fixed, it was taken into account that parameters of the light source, such as source position, an excitation wavelength and a direction of illumination can vary. The spectral Boundary Integral Equation method was used, that is known to be a very useful and versatile tool to solve electromagnetic transmission problems. While this method includes analytical regularization based on singularity divison, it was found that regularization of those kernels, which are responsible for coupling of the nanoparticles, is not needed because they do not contain singularities. Developed algorithm allows calculations of scattering characteristics for coupled Au nanoparticles for various wavelength of their illumination. The set of numerical experiments lead to development of mathematical relations used as design rules, which qualitatively describe the plasmonic coupling between dimmers and asymmetric heterodimers as a function of orientation and interparticle distance.
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