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首页> 外文期刊>ACS nano >Spatially Resolving the Enhancement Effect in Surface-Enhanced Coherent Anti-Stokes Raman Scattering by Plasmonic Doppler Gratings
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Spatially Resolving the Enhancement Effect in Surface-Enhanced Coherent Anti-Stokes Raman Scattering by Plasmonic Doppler Gratings

机译:在等离子体多普勒格勒射线散射表面增强的相干反斯托克斯拉曼散射的空间上解决了增强效果

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摘要

Well-designed plasmonic nanostructures can mediate far and near optical fields and thereby enhance light-matter interactions. To obtain the best overall enhancement, structural parameters need to be carefully tuned to obtain the largest enhancement at the input and output frequencies. This is, however, challenging for nonlinear light-matter interactions involving multiple frequencies because obtaining the full picture of structure-dependent enhancement at individual frequencies is not easy. In this work, we introduce the platform of plasmonic Doppler grating (PDG) to experimentally investigate the enhancement effect of plasmonic gratings in the input and output beams of nonlinear surface-enhanced coherent anti-Stokes Raman scattering (SECARS). PDGs are designable azimuthally chirped gratings that provide broadband and spatially dispersed plasmonic enhancement. Therefore, they offer the opportunity to observe and compare the overall enhancement from different combinations of enhancement in individual input and output beams. We first confirm PDG's capability of spatially separating the input and output enhancement in linear surface-enhanced fluorescence and Raman scattering. We then investigate spatially resolved enhancement in nonlinear SECARS, where coherent interaction of the pump, Stokes, and anti-Stokes beams is enhanced by the plasmonic gratings. By mapping the SECARS signal and analyzing the azimuthal angle-dependent intensity, we characterize the enhancement at individual frequencies. Together with theoretical analysis, we show that while simultaneous enhancement in the input and output beams is important for SECARS, the enhancement in the pump and anti-Stokes beams plays a more critical role in the overall enhancement than that in the Stokes beam. This work provides an insight into the enhancement mechanism of plasmon-enhanced spectroscopy, which is important for the design and optimization of plasmonic gratings. The PDG platform may also be applied to study
机译:设计良好的等离子体纳米结构可以调节远场和近场,从而增强光与物质的相互作用。为了获得最佳的整体增强效果,需要仔细调整结构参数,以在输入和输出频率下获得最大的增强效果。然而,对于涉及多个频率的非线性光-物质相互作用来说,这是一个挑战,因为在单个频率下获得结构相关增强的全貌并不容易。在这项工作中,我们引入等离子体多普勒光栅(PDG)平台,对非线性表面增强相干反斯托克斯拉曼散射(SECARS)的输入和输出光束中等离子体光栅的增强效应进行了实验研究。PDG是可设计的方位啁啾光栅,提供宽带和空间分散的等离子体增强。因此,它们提供了观察和比较单个输入和输出光束中不同增强组合的整体增强的机会。我们首先确认了PDG在线性表面增强荧光和拉曼散射中空间分离输入和输出增强的能力。然后我们研究了非线性SECARS中的空间分辨增强,其中等离子体光栅增强了泵浦、斯托克斯和反斯托克斯光束的相干相互作用。通过映射SECARS信号并分析与方位角相关的强度,我们描述了在各个频率下的增强。结合理论分析,我们发现,虽然输入和输出光束的同时增强对SECARS很重要,但泵浦和反斯托克斯光束的增强在整体增强中比斯托克斯光束的增强起到更关键的作用。这项工作为深入了解等离子体增强光谱的增强机理提供了依据,这对等离子体光栅的设计和优化具有重要意义。PDG平台也可用于研究

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