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单层 MoS2 与等离子体纳米天线阵列集成的 Fano 共振和光谱修饰光致发光增强。

Fano Resonance and Spectrally Modified Photoluminescence Enhancement in Monolayer MoS2 Integrated with Plasmonic Nanoantenna Array.

机构信息

†Department of Materials Science and Engineering and ‡Department of Physics and Astronomy, University of Pennsylvania, Philadelphia, Pennsylvania 19104, United States.

出版信息

Nano Lett. 2015 May 13;15(5):3646-53. doi: 10.1021/acs.nanolett.5b01563. Epub 2015 May 1.

Abstract

The manipulation of light-matter interactions in two-dimensional atomically thin crystals is critical for obtaining new optoelectronic functionalities in these strongly confined materials. Here, by integrating chemically grown monolayers of MoS2 with a silver-bowtie nanoantenna array supporting narrow surface-lattice plasmonic resonances, a unique two-dimensional optical system has been achieved. The enhanced exciton-plasmon coupling enables profound changes in the emission and excitation processes leading to spectrally tunable, large photoluminescence enhancement as well as surface-enhanced Raman scattering at room temperature. Furthermore, due to the decreased damping of MoS2 excitons interacting with the plasmonic resonances of the bowtie array at low temperatures stronger exciton-plasmon coupling is achieved resulting in a Fano line shape in the reflection spectrum. The Fano line shape, which is due to the interference between the pathways involving the excitation of the exciton and plasmon, can be tuned by altering the coupling strengths between the two systems via changing the design of the bowties lattice. The ability to manipulate the optical properties of two-dimensional systems with tunable plasmonic resonators offers a new platform for the design of novel optical devices with precisely tailored responses.

摘要

在二维原子薄晶体中操控光物质相互作用对于在这些强受限材料中获得新的光电功能至关重要。在这里,通过将化学生长的 MoS2 单层与支持窄表面晶格等离子体共振的银蝴蝶结纳米天线阵列集成,实现了独特的二维光学系统。增强的激子-等离子体耦合使发射和激发过程发生深刻变化,导致在室温下光谱可调谐、大的光致发光增强以及表面增强拉曼散射。此外,由于在低温下与蝴蝶结阵列的等离子体共振相互作用的 MoS2 激子的阻尼减小,实现了更强的激子-等离子体耦合,导致反射光谱中出现 Fano 线形状。由于涉及激子和等离子体激发的途径之间的干涉,Fano 线形状可以通过改变蝴蝶结晶格的设计来改变两个系统之间的耦合强度来进行调整。利用可调谐等离子体共振器来操控二维系统的光学性质,为设计具有精确响应的新型光学器件提供了新的平台。

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