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Plasmonic Gold Nanohole Arrays for Surface-Enhanced Sum Frequency Generation Detection

机译:表面增强频率发电检测的等离子体金纳米孔阵列

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摘要

Nobel metal nanohole arrays have been used extensively in chemical and biological systems because of their fascinating optical properties. Gold nanohole arrays (Au NHAs) were prepared as surface plasmon polariton (SPP) generators for the surface-enhanced sum-frequency generation (SFG) detection of 4-Mercaptobenzonitrile (4-MBN). The angle-resolved reflectance spectra revealed that the Au NHAs have three angle-dependent SPP modes and two non-dispersive localized surface plasmon resonance (LSPR) modes under different structural orientation angles (sample surface orientation). An enhancement factor of ~30 was achieved when the SPP and LSPR modes of the Au NHAs were tuned to match the incident visible (VIS) and output SFG, respectively. This multi-mode matching strategy provided flexible controls and selective spectral windows for surface-enhanced measurements, and was especially useful in nonlinear spectroscopy where more than one light beam was involved. The structural orientation- and power-dependent performance demonstrated the potential of plasmonic NHAs in SFG and other nonlinear sensing applications, and provided a promising surface molecular analysis development platform.
机译:由于其迷人的光学性质,诺贝尔金属纳米罗阵列已被广泛使用化学和生物系统。为表面增强的Suply-频率产生(SFG)检测为4-巯基苄腈(4-MBN)的表面等离子体极谱(SPP)发电机制备金纳米孔阵列(SPP)发电机。角度分辨反射光谱显示,AU NHA具有三种角度依赖性SPP模式和两个在不同结构取向角下的两个非分散局部化的表面等离子体谐振(LSPR)模式(样本表面方向)。当调整AU NHA的SPP和LSPR模式以分别匹配入射可见(VI)和输出SFG时,实现了〜30的增强因子。这种多模式匹配策略为表面增强的测量提供了灵活的控制和选择性光谱窗口,并且在非线性光谱中特别有用,其中涉及多个光束。结构取向和职能依赖性能证明了SFG和其他非线性传感应用中等离子体NHA的潜力,并提供了有希望的表面分子分析开发平台。

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