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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Engineering the Optical Properties of Gold Nanorods: Independent Tuning of Surface Plasmon Energy, Extinction Coefficient, and Scattering Cross Section
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Engineering the Optical Properties of Gold Nanorods: Independent Tuning of Surface Plasmon Energy, Extinction Coefficient, and Scattering Cross Section

机译:设计金纳米棒的光学特性:表面等离激元能量,消光系数和散射截面的独立调整

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The future integration of plasmonic nanoparticles, such as gold nanorods (Au NRs), into applications requires the ability to tune the components of their optical properties to optimize performance for the underlying technology. Verifying techniques that model the resonance energy and associated extinction, scattering, and absorption cross sections necessitate experimental data from series of Au NRs where structural features are independently tuned. Here, the extinction cross section and scattering efficiency are presented for Au NR series with high compositional and structural purity where effective volume, aspect ratio, length, and diameter are independently varied by factors of 25, 3, 2, and 4, respectively. The extinction cross sections quantitatively agree with prior calculations, confirming that the volume of the rod is the dominant factor. Comparisons of the scattering efficiency however are less precise, with both quantitative and qualitative differences between the role of rod volume and aspect ratio. Such extensive experimental data sets provide a critical platform to improve quantitative structure—property correlations, and thus enable design optimization of plasmonic nanoparticles for emerging applications.
机译:等离子体金纳米棒(例如金纳米棒(Au NRs))未来的集成需要在应用中具有调节其光学特性的组件的能力,以优化基础技术的性能。对共振能量以及相关的消光,散射和吸收截面进行建模的验证技术需要来自一系列Au NR的实验数据,其中结构特征是独立调整的。在此,介绍了具有高成分和结构纯度的Au NR系列的消光截面和散射效率,其中有效体积,纵横比,长度和直径分别独立地因25、3、2和4倍而变化。消光截面在数量上与先前的计算吻合,证实了棒的体积是主要因素。然而,散射效率的比较不够精确,杆体积和纵横比的作用在数量和质量上都存在差异。如此丰富的实验数据集提供了一个关键平台,可改善定量结构与属性的相关性,从而能够优化针对新兴应用的等离子体纳米颗粒的设计。

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