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用于缩小结构化光以实现禁戒跃迁的等离子体纳米结构。

Plasmonic nanostructures for shrinking structured light to access forbidden transitions.

作者信息

Sakai Kyosuke, Kitajima Hiroki, Sasaki Keiji

机构信息

Research Institute for Electronic Science, Hokkaido University, Sapporo, Hokkaido 001-0020, Japan.

出版信息

Nanophotonics. 2022 Jan 4;11(11):2465-2472. doi: 10.1515/nanoph-2021-0658. eCollection 2022 Jun.

Abstract

Plasmonic nanostructures have considerable applicability in light-matter interactions owing to their capacity for strong field confinement and enhancement. Nanogap structures allow us to tailor electric field distributions at the nanoscale, bridging the differences in size and shape of atomic and light structures. In this study, we demonstrated that a plasmonic tetramer structure can squeeze structured light into a nanoscale area, in which a strong field gradient allows access to forbidden transitions. Numerical simulations showed that the gold tetramer structure on a glass substrate possesses a plasmonic eigenmode, which forms structured light with a quadrupole profile in the nanogap region at the center of the tetramer. The top-down technique employed using electron-beam lithography allows us to produce a gap size of approximately 50 nm, which supports plasmonic resonance in the near-infrared regime. In addition, we demonstrated an array architecture in which a collective lattice resonance enhances the intensity of the quadrupole field in multiple lattice units. This study highlights the possibility of accessing multipolar transitions in a combined system of structured light and plasmonic nanostructures. Our findings may lead to new platforms for spectroscopy, sensing, and light sources that take advantage of the full electronic spectrum of an emitter.

摘要

等离子体纳米结构因其强大的场限制和增强能力,在光与物质相互作用中具有相当广泛的适用性。纳米间隙结构使我们能够在纳米尺度上定制电场分布,弥合原子结构和光结构在尺寸和形状上的差异。在本研究中,我们证明了一种等离子体四聚体结构能够将结构化光压缩到纳米尺度区域,其中强场梯度允许实现禁戒跃迁。数值模拟表明,玻璃基板上的金四聚体结构具有一种等离子体本征模式,该模式在四聚体中心的纳米间隙区域形成具有四极分布的结构化光。采用电子束光刻的自上而下技术使我们能够产生约50纳米的间隙尺寸,该尺寸支持近红外波段的等离子体共振。此外,我们展示了一种阵列结构,其中集体晶格共振增强了多个晶格单元中四极场的强度。本研究突出了在结构化光与等离子体纳米结构的组合系统中实现多极跃迁的可能性。我们的发现可能会带来利用发射体全电子光谱的光谱学、传感和光源新平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/88ea/11502040/91e35a387ab2/j_nanoph-2021-0658_fig_001.jpg

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