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用于增强水中单层石墨烯表面增强拉曼散射信号的等离子体纳米孔阵列

Plasmonic nanohole array for enhancing the SERS signal of a single layer of graphene in water.

作者信息

Mahigir Amirreza, Chang Te-Wei, Behnam Ashkan, Liu Gang Logan, Gartia Manas Ranjan, Veronis Georgios

机构信息

School of Electrical Engineering and Computer Sciences, Louisiana State University, Baton Rouge, Louisiana, 70803, USA.

Center for Computation and Technology, Louisiana State University, Baton Rouge, Louisiana, 70808, USA.

出版信息

Sci Rep. 2017 Oct 25;7(1):14044. doi: 10.1038/s41598-017-14369-x.

Abstract

We numerically design and experimentally test a SERS-active substrate for enhancing the SERS signal of a single layer of graphene (SLG) in water. The SLG is placed on top of an array of silver-covered nanoholes in a polymer and is covered with water. Here we report a large enhancement of up to 2 × 10 in the SERS signal of the SLG on the patterned plasmonic nanostructure for a 532 nm excitation laser wavelength. We provide a detailed study of the light-graphene interactions by investigating the optical absorption in the SLG, the density of optical states at the location of the SLG, and the extraction efficiency of the SERS signal of the SLG. Our numerical calculations of both the excitation field and the emission rate enhancements support the experimental results. We find that the enhancement is due to the increase in the confinement of electromagnetic fields on the location of the SLG that results in enhanced light absorption in the graphene at the excitation wavelength. We also find that water droplets increase the density of optical radiative states at the location of the SLG, leading to enhanced spontaneous emission rate of graphene at its Raman emission wavelengths.

摘要

我们通过数值设计并实验测试了一种表面增强拉曼散射(SERS)活性基底,用于增强水中单层石墨烯(SLG)的SERS信号。该单层石墨烯置于聚合物中银覆盖纳米孔阵列的顶部,并被水覆盖。在此,我们报道了在532nm激发激光波长下,图案化等离子体纳米结构上的单层石墨烯的SERS信号大幅增强,增强倍数高达2×10。我们通过研究单层石墨烯中的光吸收、单层石墨烯位置处的光学态密度以及单层石墨烯的SERS信号提取效率,对光与石墨烯的相互作用进行了详细研究。我们对激发场和发射率增强的数值计算支持了实验结果。我们发现增强是由于单层石墨烯位置处电磁场限制的增加,这导致石墨烯在激发波长处的光吸收增强。我们还发现水滴增加了单层石墨烯位置处的光学辐射态密度,导致石墨烯在其拉曼发射波长处的自发发射率增强。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/99ad/5656589/e5214eb89b96/41598_2017_14369_Fig1_HTML.jpg

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