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利用电子能量损失谱研究等离子体异质二聚体中的模式耦合。

Mode Coupling in Plasmonic Heterodimers Probed with Electron Energy Loss Spectroscopy.

机构信息

Microsystems Laboratory, Institute of Microtechnique, École Polytechnique Fédérale de Lausanne , 1015 Lausanne, Switzerland.

Nanophotonics and Metrology Laboratory, École Polytechnique Fédérale de Lausanne , 1015 Lausanne, Switzerland.

出版信息

ACS Nano. 2017 Apr 25;11(4):3485-3495. doi: 10.1021/acsnano.6b08589. Epub 2017 Mar 27.

Abstract

While plasmonic antennas composed of building blocks made of the same material have been thoroughly studied, recent investigations have highlighted the unique opportunities enabled by making compositionally asymmetric plasmonic systems. So far, mainly heterostructures composed of nanospheres and nanodiscs have been investigated, revealing opportunities for the design of Fano resonant nanostructures, directional scattering, sensing and catalytic applications. In this article, an improved fabrication method is reported that enables precise tuning of the heterodimer geometry, with interparticle distances made down to a few nanometers between Au-Ag and Au-Al nanoparticles. A wide range of mode energy detuning and coupling conditions are observed by near field hyperspectral imaging performed with electron energy loss spectroscopy, supported by full wave analysis numerical simulations. These results provide direct insights into the mode hybridization of plasmonic heterodimers, pointing out the influence of each dimer constituent in the overall electromagnetic response. By relating the coupling of nondipolar modes and plasmon-interband interaction with the dimer geometry, this work facilitates the development of plasmonic heterostructures with tailored responses, beyond the possibilities offered by homodimers.

摘要

虽然由相同材料制成的构建块组成的等离子体天线已经得到了彻底的研究,但最近的研究强调了通过制造成分不对称的等离子体系统所带来的独特机会。到目前为止,主要研究了由纳米球和纳米盘组成的异质结构,揭示了设计 Fano 共振纳米结构、定向散射、传感和催化应用的机会。在本文中,报道了一种改进的制造方法,该方法能够精确调整异质二聚体的几何形状,使 Au-Ag 和 Au-Al 纳米颗粒之间的粒子间距离缩小到几纳米。通过电子能量损失光谱进行的近场高光谱成像观察到了广泛的模式能量失谐和耦合条件,这得到了全波分析数值模拟的支持。这些结果提供了对等离子体异质二聚体模式杂交的直接洞察,指出了每个二聚体成分对整体电磁响应的影响。通过将非偶极子模式的耦合和等离子体-能带相互作用与二聚体几何形状联系起来,这项工作促进了具有定制响应的等离子体异质结构的发展,超越了同二聚体所提供的可能性。

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