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Plasmonic Color Analysis of Ag-coated Black-Si SERS Substrate

机译:涂银黑硅SERS基板的等离子体颜色分析

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摘要

Red-Green-Blue (RGB) dark-field imaging can direct the choice of laser excitation for Raman enhancements on nanostructured plasmonic surfaces. Here we demonstrate that black Silicon (b-Si) is a structured surface that has been shown to effectively absorb broad wavelengths of light, but also enables surface enhanced Raman scattering (SERS) when coated with silver (Ag). Coating b-Si with increasing amounts of Ag results in increased dark-field scattering at discrete frequencies associated with localized plasmon resonances. The dark-field scattering was monitored by collecting a far-field image with an inexpensive Complementary Metal Oxide Semiconductor (CMOS) camera, similar to what is available on most mobile phones. Color analysis of the RGB pixel intensities correlates with the observed SERS intensity obtained with either green (532 nm) or red (633 nm) laser excitation in SERS experiments. Of particular note, the SERS response at 633 nm showed low spectral variation and a lack of background scattering compared to SERS at 532 nm. The difference in background suggests sub-radiant (dark or Fano resonances) may be associated with the SERS response at 633 nm and a non-resonant character of SERS. These results indicate that b-Si serves a template where Ag nucleates during physical vapor deposition. Increased deposition causes the deposits to coalesce, and at larger Ag thicknesses, bulk scattering is observed. Comparison with a high enhancement Ag SERS substrate further illustrates that a high density of plasmonic junctions, or hotspots, is important for maximizing the SERS response. The randomness of the b-Si substrate and the corresponding Ag nano-features contributes to a broadband spectral response and enhancement in SERS. Metal-coated b-Si is a promising SERS substrate due to its performance and facile fabrication.
机译:红绿蓝(RGB)暗场成像可以指导激光激发的选择,以增强纳米结构等离子体表面上的拉曼光谱。在这里,我们证明了黑硅(b-Si)是一种结构化表面,已被证明可以有效吸收宽波长的光,但是在涂有银(Ag)时也可以实现表面增强的拉曼散射(SERS)。用增加的Ag量覆盖b-Si会导致与局部等离子体激元共振相关的离散频率处的暗场散射增加。暗场散射是通过使用便宜的互补金属氧化物半导体(CMOS)相机收集远场图像进行监控的,这与大多数移动电话上的功能类似。 RGB像素强度的颜色分析与在SERS实验中通过绿色(532 nm)或红色(633 nm)激光激发获得的观察到的SERS强度相关。特别值得注意的是,与532 nm的SERS相比,在633 nm的SERS响应显示出较低的光谱变化和背景散射。背景的差异表明亚辐射(暗或法诺共振)可能与633 nm处的SERS响应和SERS的非共振特征有关。这些结果表明,b-Si可作为模板,其中Ag在物理气相沉积过程中成核。沉积增加会导致沉积物聚结,并且在较大的Ag厚度下,会观察到大量散射。与高增强Ag SERS底物的比较进一步说明,高密度的等离激元连接或热点对于最大化SERS响应很重要。 b-Si衬底和相应的Ag纳米特征的随机性有助于宽带光谱响应和SERS的增强。金属涂层的b-Si由于其性能和制造简便性而成为有前途的SERS衬底。

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