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使用箔上纳米颗粒结构访问等离子体热点。

Accessing Plasmonic Hotspots Using Nanoparticle-on-Foil Constructs.

作者信息

Chikkaraddy Rohit, Baumberg Jeremy J

机构信息

NanoPhotonics Centre, Cavendish Laboratory, Department of Physics, JJ Thompson Avenue, University of Cambridge, Cambridge CB3 0HE, United Kingdom.

出版信息

ACS Photonics. 2021 Sep 15;8(9):2811-2817. doi: 10.1021/acsphotonics.1c01048. Epub 2021 Aug 23.

Abstract

Metal-insulator-metal (MIM) nanogaps in the canonical nanoparticle-on-mirror geometry (NPoM) provide deep-subwavelength confinement of light with mode volumes smaller than / < 10. However, access to these hotspots is limited by the impendence mismatch between the high in-plane of trapped light and free-space plane-waves, making the in- and out-coupling of light difficult. Here, by constructing a nanoparticle-on-foil (NPoF) system with thin metal films, we show the mixing of insulator-metal-insulator (IMI) modes and MIM gap modes results in MIMI modes. This mixing provides multichannel access to the plasmonic nanocavity through light incident from both sides of the metal film. The red-tuning and near-field strength of MIMI modes for thinner foils is measured experimentally with white-light scattering and surface-enhanced Raman scattering from individual NPoFs. We discuss further the utility of NPoF systems, since the geometry allows tightly confined light to be accessed simply through different ports.

摘要

规范的镜上纳米颗粒结构(NPoM)中的金属-绝缘体-金属(MIM)纳米间隙可实现光的深亚波长限制,其模式体积小于/<10。然而,由于捕获光的高面内阻抗与自由空间平面波之间的阻抗失配,使得进入这些热点受到限制,从而导致光的输入和输出耦合变得困难。在此,通过构建具有薄金属膜的箔上纳米颗粒(NPoF)系统,我们展示了绝缘体-金属-绝缘体(IMI)模式与MIM间隙模式的混合产生了MIMI模式。这种混合通过从金属膜两侧入射的光提供了通往等离子体纳米腔的多通道途径。利用单个NPoF的白光散射和表面增强拉曼散射,通过实验测量了较薄箔的MIMI模式的红移和近场强度。我们进一步讨论了NPoF系统的实用性,因为这种结构允许通过不同端口简单地获取被紧密限制的光。

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