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Plasmon coupling between complex gold nanostructures and a dielectric substrate

机译:复合金纳米结构与介电基板之间的等离子体耦合

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Intercoupling of an incident electric field in metal nanoparticles causes asymmetric distribution of surface charges, which eventuates in shifting of the surface plasmon resonance frequency. This feature can be used in tuning the surface plasmon resonance and controlling the light absorption in a desired wavelength. This work provides a theoretical study of the plasmonic properties of complex gold nanostructures on a dielectric substrate where the nanoparticles have different morphologies. For analysis, we have developed a discrete dipole approximation with surface interactions-z, which is the third version of the MATLAB-based DDA-SI toolbox. In this version, lower-upper decomposition of the interaction matrix is used as a preconditioning of the LSQR iterative solver. This method accelerates the DDA-SI calculations by decreasing the total number of iteration steps and decreases the relative residual to achieve more accurate results. In the analysis, nanostructures are assumed to be gold dimers, trimers, and quadrumers with different sizes and elongations of cubical or spherical geometries on a BK7 substrate. The results show that absorption spectra exhibit both red- and blueshifted plasmon resonances in array, depending on the particle shape and elongation. The cubic structure of gold array provides the highest absorption efficiency, while the spherical structures give wider bandwidth; the combination of these structures could be used to design a system with intended features. We demonstrate that the geometrical symmetry plays an important role in the plasmon resonance of gold arrays, and it is shifted when the symmetry of the array is broken. (C) 2018 Optical Society of America
机译:金属纳米粒子中的入射电场的互耦导致表面电荷的不对称分布,这使得表面等离子体共振频率的移位变速。该特征可用于调谐表面等离子体共振并控制所需波长的光吸收。这项工作提供了纳米颗粒具有不同形态的介电衬底上复合金纳结构的等离子体性能的理论研究。对于分析,我们开发了具有表面交互-Z的离散偶极逼近,这是基于MATLAB的DDA-SI工具箱的第三个版本。在此版本中,交互矩阵的下上部分解用作LSQR迭代求解器的预处理。该方法通过降低迭代步骤的总数来加速DDA-Si计算,并降低相对残余以实现更准确的结果。在分析中,假设纳米结构是金二聚体,三聚体和具有不同尺寸和在BK7基板上的立方体或球形几何形状的不同尺寸和伸长的齐倍。结果表明,吸收光谱根据颗粒形状和伸长率表现出阵列中的红色和蓝色的等离子体共振。金阵的立方结构提供最高的吸收效率,而球形结构具有更宽的带宽;这些结构的组合可用于设计具有预期特征的系统。我们表明,几何对称在金阵列的等离子体共振中起着重要作用,并且当阵列的对称性破裂时它被移位。 (c)2018年光学学会

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