金纳米颗粒金属增强荧光分析生物液体

Ludmila Illyashenko-Raguin
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引用次数: 0

摘要

金纳米颗粒对环境变化具有很高的敏感性。这种特性是金纳米粒子表面等离子体共振现象的结果。表面等离子体共振波长和共振增强散射不仅与纳米粒子的形状和尺寸密切相关,还与外界环境的性质有关。因此,环境介质介电常数的微小变化会引起表面等离子体共振波长的偏移。由于金的表面等离子体共振落在电磁波谱的可见部分,因此可以注意到由于共振增强散射光颜色的变化而引起的表面等离子体共振波长的变化。利用快速傅立叶变换改进的基于奇异减法的解析正则化谱傅立叶-伽辽金边界积分方程方法可以通过计算分析这种变化,是研究金纳米粒子电磁传输问题散射特性的可靠工具。而金的介电常数与激发波长有关。因此,在一定波长范围内的散射特性计算必须根据波长参数在每一步更新介电常数参数。同时,生物液体的介电常数也可能与波长有关。在这项工作中,开发了一种新的数值模拟算法,该算法考虑了金和生物液体的复值波长相关介电常数,用于利用金纳米粒子的金属增强荧光分析生物液体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of Biological Liquids by Metal Enhanced Fluorescence from Gold Nanoparticles
Gold nanoparticles have high sensitivity to environmental changes. This property results from phenomena of surface plasmon resonances in gold nanoparticles. While surface plasmon resonance wavelength and resonantly enhanced scattering depend strongly on nanoparticle shape and size, they also depend on properties of external environment. Thus, slight change in dielectric permittivity of environment leads to shift of surface plasmon resonance wavelength. Since surface plasmon resonances of gold fall in visible part of electromagnetic spectrum, it is possible to notice the change of surface plasmon resonance wavelength due to the change of the color of resonantly enhanced scattered light. It is possible to analyze such a change based on calculations using Spectral Fourier-Galerkin Boundary Integral Equation method with analytical regularization based on Singularity Subtraction improved by Fast Fourier Transform, which is reliable tool to study scattering characteristics solving Electromagnetic Transmission Problem for gold nanoparticles. However, the dielectric permittivity of gold depends on excitation wavelength. Because of that, calculation of scattering characteristics over some range of wavelength must be done updating permittivity parameter at each step depending on the wavelength parameter. At the same time dielectric permittivities of biological liquids may be also wavelength dependent. In this work novel numerical simulation algorithm was developed to take into account complex valued wavelength dependent dielectric permittivities of gold and biological liquids for analysis of biological liquids by metal enhanced fluorescence from gold nanoparticles.
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