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Electron-energy loss study of nonlocal effects in connected plasmonic nanoprisms

机译:连接的等离子体纳米棱镜中非局域效应的电子能量损失研究

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摘要

We investigate the emergence of nonlocal effects in plasmonic nanostructures through electron-energy loss spectroscopy. To theoretically describe the spatial dispersion in the metal permittivity, we develop a full three-dimensional nonlocal hydrodynamic solution of Maxwell's equations in frequency domain that implements the electron beam as a line current source. We use our numerical approach to perform an exhaustive analysis of the impact of nonlocality in the plasmonic response of single triangular prisms and connected bowtie dimers. Our results demonstrate the complexity of the interplay between nonlocal and geometric effects taking place in these structures. We show the different sensitivities to both effects of the various plasmonic modes supported by these systems. Finally, we present an experimental electron-energy loss study on gold nanoprisms connected by bridges as narrow as 1.6 nm. The comparison with our theoretical predictions enables us to reveal in a phenomenological fashion the enhancement of absorption damping that occurs in these atomistic junctions due to quantum confinement and grain boundary electron scattering.
机译:我们通过电子能量损失光谱研究了等离子体纳米结构中非局部效应的出现。为了从理论上描述金属介电常数的空间色散,我们在频域中开发了麦克斯韦方程组的完整三维非局部流体动力解决方案,该解决方案将电子束用作线路电流源。我们使用数值方法对单个三角棱镜和连接的领结二聚体的等离子体响应中的非局部性影响进行了详尽的分析。我们的结果证明了在这些结构中发生的非局部和几何效应之间相互作用的复杂性。我们展示了对这些系统支持的各种等离激元模式的两种效应的不同敏感性。最后,我们对通过窄至1.6 nm的电桥连接的金纳米棱镜进行了实验性电子能量损失研究。与理论预测值的比较使我们能够以现象学的方式揭示由于原子限制和晶界电子散射而在这些原子性结中发生的吸收阻尼的增强。

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