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优化粒子密度以最大化周期性等离子体纳米结构阵列的表面增强拉曼散射增强因子。

Optimization of the particle density to maximize the SERS enhancement factor of periodic plasmonic nanostructure array.

作者信息

Wei Shuhua, Zheng Mengjie, Xiang Quan, Hu Hailong, Duan Huigao

出版信息

Opt Express. 2016 Sep 5;24(18):20613-20. doi: 10.1364/OE.24.020613.

Abstract

Low-cost surface-enhanced Raman scattering (SERS) substrate with the largest possible enhancement factor is highly desirable for SERS-based sensing applications. In this work, we systematically investigated how the density of plasmonic nanostructures affects the intensity of SERS signal. By directly depositing of metallic layer on electron-beam-lithography defined dielectric nanoposts, plasmonic structures array with different densities were reliably fabricated for SERS measurements. Two main experimental phenomena were obtained: (1) the SERS intensity did not increase monotonically when increasing the density of plasmonic structures, and (2) these ultra-dense plasmonic structures resulted in the maximal SERS intensity. These results could be well explained based on finite-difference time domain (FDTD) simulations and provide robust experimental evidences to guide the design of the best possible SERS substrate.

摘要

对于基于表面增强拉曼散射(SERS)的传感应用而言,非常需要具有尽可能大的增强因子的低成本SERS基底。在这项工作中,我们系统地研究了等离子体纳米结构的密度如何影响SERS信号的强度。通过将金属层直接沉积在电子束光刻定义的介电纳米柱上,可靠地制备了具有不同密度的等离子体结构阵列用于SERS测量。获得了两个主要实验现象:(1)当增加等离子体结构的密度时,SERS强度并非单调增加;(2)这些超密集等离子体结构产生了最大的SERS强度。基于时域有限差分(FDTD)模拟可以很好地解释这些结果,并为指导设计最佳SERS基底提供有力的实验证据。

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