等离子体子
半导体
光致发光
材料科学
光电子学
纳米光子学
光子学
超短脉冲
拉曼光谱
塞尔效应
阴极发光
物理
光学
激光器
自发辐射
发光
作者
Miaoyi Deng,Ziwei Li,Xin Rong,Yang Luo,Bowen Li,Li Zheng,Xiao Wang,Feng Lin,Alfred J. Meixner,Kai Braun,Xing Zhu,Zheyu Fang
出处
期刊:Small
[Wiley]
日期:2020-09-16
卷期号:16 (40)
被引量:17
标识
DOI:10.1002/smll.202003539
摘要
Abstract The energy transfer from plasmonic nanostructures to semiconductors has been extensively studied to enhance light‐harvesting and tailor light–matter interactions. In this study, the efficient energy transfer from an Au metasurface to monolayered MoS 2 within a near‐field coupling regime is reported. The metasurface is designed and fabricated to demonstrate strong photoluminescence (PL) and cathodoluminescence (CL) emission spectra. In the coupled heterostructure of MoS 2 with a metasurface, both the Raman shift and absorption spectral intensities of monolayered MoS 2 are affected. The spectral profile and PL peak position can be tailored owing to the energy transfer between plasmonic nanostructures and semiconductors. This is confirmed by ultrafast lifetime measurement. A theoretical model of two coupled oscillators is proposed, where the expanded general solutions (EGS) of such a model result in a series of eigenvalues that correspond to the renormalization of energy levels in modulated MoS 2 . The model can predict the peak shift up to tens of nanometers in hybrid structures and hence provides an alternative method to describe energy transfer between metallic structures and two‐dimensional (2D) semiconductors. A viable approach for studying light–matter interactions in 2D semiconductors via near‐field energy transfer is presented, which may stimulate the applications of functional nanophotonic devices.
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