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利用石墨烯的表面增强拉曼光谱探测薄膜上等离子体颗粒纳米腔中的面内近场增强极限

Probing the in-Plane Near-Field Enhancement Limit in a Plasmonic Particle-on-Film Nanocavity with Surface-Enhanced Raman Spectroscopy of Graphene.

作者信息

Liu Danjun, Wu Tingting, Zhang Qiang, Wang Ximiao, Guo Xuyun, Su Yunkun, Zhu Ye, Shao Minhua, Chen Huanjun, Luo Yu, Lei Dangyuan

机构信息

Department of Applied Physics , The Hong Kong Polytechnic University , Hung Hom , 999077 , Hong Kong , China.

School of Electrical & Electronic Engineering , Nanyang Technological University , 50 Nanyang Avenue , 639798 , Singapore.

出版信息

ACS Nano. 2019 Jul 23;13(7):7644-7654. doi: 10.1021/acsnano.9b00776. Epub 2019 Jun 24.

Abstract

When the geometric features of plasmonic nanostructures approach the subnanometric regime, nonlocal screening and charge spill-out of metallic electrons will strongly modify the optical responses of the structures. While quantum tunneling resulting from charge spill-out has been widely discussed in the literature, the near-field enhancement saturation caused by the nonlocal screening effect still lacks a direct experimental verification. In this work, we use surface-enhanced Raman spectroscopy (SERS) of graphene to probe the in-plane near-field enhancement limit in gold nanosphere-on-film nanocavities where different layers of graphene are sandwiched between a gold nanosphere and a gold film. Together with advanced transmission electron microscopy cross-sectional imaging and nonlocal hydrodynamic theoretical calculations, the cavity gap width correlated SERS and dark-field scattering measurements reveal that the intrinsic nonlocal dielectric response of gold limits the near-field enhancement factors and mitigates the plasmon resonance red-shift with decreasing the gap width to less than one nanometer. Our results not only verify previous theoretical predictions in both the near-field and far-field regime but also demonstrate the feasibility of controlling the near- and far-field optical response in such versatile plasmonic particle-graphene-on-film nanocavities, which can find great potential in applications of graphene-based photonic devices in the visible and near-infrared region.

摘要

当等离激元纳米结构的几何特征接近亚纳米尺度时,金属电子的非局域屏蔽和电荷溢出将强烈改变结构的光学响应。虽然电荷溢出导致的量子隧穿已在文献中得到广泛讨论,但非局域屏蔽效应引起的近场增强饱和仍缺乏直接的实验验证。在这项工作中,我们利用石墨烯的表面增强拉曼光谱(SERS)来探测金膜上纳米球纳米腔中的面内近场增强极限,其中不同层的石墨烯夹在金纳米球和金膜之间。结合先进的透射电子显微镜横截面成像和非局域流体动力学理论计算,与腔隙宽度相关的SERS和暗场散射测量结果表明,金的固有非局域介电响应限制了近场增强因子,并随着间隙宽度减小到小于一纳米而减轻了等离子体共振红移。我们的结果不仅验证了近场和远场区域先前的理论预测,还证明了在这种多功能的等离子体粒子-石墨烯-膜纳米腔中控制近场和远场光学响应的可行性,这在基于石墨烯的光子器件在可见光和近红外区域的应用中具有巨大潜力。

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