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Localization Of The Electromagnetic Field In The Vicinity Of Gold Nanoparticles: Surface Modification Of Different Substrates

机译:金纳米粒子附近的电磁场定位:不同基质的表面改性

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摘要

Theoretical predictions and experimental results for nanosized modification of metal (Au), semiconductor (Si), or dielectric (soda lime glass) substrates using near-electromagnetic field enhancement in the vicinity of gold nanoparticles are presented. The near field properties for the system consisting of an isolated gold nanoparticle or nanoparticle aggregate deposited on the substrates, which is irradiated by electromagnetic wave, are investigated using Finite Difference Time Domain Simulation technique. The influence of the substrate material on the near field distribution characteristics is predicted. The results reveal that the field on the substrate surface is enhanced in the three investigated cases, but its spatial distribution and magnitude depend on the substrate material. In the case of the metal and semiconductor substrate the enhanced near field is strongly localized in the vicinity of the contact point with the particle, in an area with diameter smaller than the particle's one. The intensity of the enhanced field on the glass is more than an order of magnitude lower than the case of using silicon substrate. The properties of the near field on the substrate surface also depend on the particle arrangement. For a two-dimensional gold nanoparticle array, when the particles are closely arrayed, the intensity of the enhanced field on the substrate surface is minimal. With the increase of the interparticle distance the near field intensity increases. The validity of the obtained theoretical results is confirmed experimentally.
机译:提出了使用金纳米粒子附近的近电磁场增强技术对金属(Au),半导体(Si)或电介质(钠钙玻璃)进行纳米尺寸改性的理论预测和实验结果。使用有限差分时域模拟技术研究了由孤立的金纳米颗粒或沉积在基板上的纳米颗粒聚集体组成的系统的近场特性,该系统被电磁波照射。可以预测衬底材料对近场分布特性的影响。结果表明,在三种研究情况下,基板表面的电场均得到增强,但其空间分布和大小取决于基板材料。在金属和半导体衬底的情况下,增强的近场强烈地局限在与颗粒的接触点附近,在直径小于颗粒直径的区域中。与使用硅基板的情况相比,玻璃上的增强场的强度低一个数量级以上。基板表面上近场的特性还取决于粒子排列。对于二维金纳米颗粒阵列,当颗粒紧密排列时,在基板表面上的增强场的强度最小。随着粒子间距离的增加,近场强度增加。实验证明了所获得理论结果的有效性。

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