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Hybridization of plasmonic antenna and cavity modes: Extreme optics of nanoparticle-on-mirror nanogaps

机译:等离子体激元和腔模的杂交:纳米微镜上纳米间隙的极端光学

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摘要

The precise structural details of metallic nanogaps within optical antennae are found to dramatically modify the plasmonic response, producing a complex pattern of electromagnetic modes that can be directly observed in scattering experiments. We analyze this situation theoretically in the nanoparticle-on-mirror construct, which forms a plasmonic nanogap sensitive to even atomic-scale restructuring of nanoparticle morphology. We focus on the effect of nanoparticle faceting, which allows the formation of ultrathin cavities between the particle and the underlying metallic film in the nanoparticle-on-mirror geometry. Two different sets of modes are identified: longitudinal antenna modes, which are strongly radiative and excited for all facet width ranges, and transverse cavity modes produced at large facets and exhibiting extreme confinement. The interaction and hybridization of antenna and cavity modes is determined by their symmetry and the precise morphology of the nanogap edges. Understanding such complex optics from nanoparticle-on-mirror structures is important to elucidate a wide variety of emerging photochemical and optoelectronic processes.
机译:发现光学天线内金属纳米间隙的精确结构细节可以显着改变等离子体响应,产生可以在散射实验中直接观察到的电磁模式的复杂模式。我们从理论上在镜面上的纳米粒子结构中分析了这种情况,该结构形成了对纳米粒子形态甚至原子尺度重构都敏感的等离子体纳米间隙。我们关注纳米粒子刻面的效果,该效果允许在纳米粒子镜上几何结构中的粒子与下面的金属膜之间形成超薄空腔。确定了两种不同的模式集:纵向天线模式(在所有小平面宽度范围内都具有强烈的辐射和激发力),以及在大小平面上产生并表现出极限约束的横向腔模式。天线和腔模的相互作用和杂化取决于它们的对称性和纳米间隙边缘的精确形态。从镜面上纳米粒子的结构了解这种复杂的光学器件对于阐明各种新兴的光化学和光电过程非常重要。

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