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Multiple Surface Plasmon Resonances and Near-Infrared Field Enhancement of Gold Nanowells

机译:金纳米孔的多重表面等离子体共振和近红外场增强。

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Arrays of Au nanowells (NWs) were fabricated by electron-beam lithography (EBL) and characterized by surface plasmon resonance (SPR) and surface-enhanced Raman scattering (SERS). It is revealed that these Au NW arrays exhibit multiple SP resonances that can be tuned by adjusting the geometrical characteristics of the NWs. SERS activity of Au NWs was confirmed for a range of excitation wavelengths and a number of model compounds including rhodamine 6G (R6G), phthalazine, and single-stranded oligonucleotides. According to numerical simulations based on the discrete dipole approximation (DDA), SERS enhancement originates from high electromagnetic fields (hot spots) localized both inside and outside individual NWs. In addition, far-field intercoupling effects between NWs have been observed experimentally in arrays with subwavelength pitch sizes. We show that the SERS enhancement factors can also be tuned and optimized by adjusting the geometry of NWs.
机译:通过电子束光刻(EBL)制备金纳米孔(NWs)阵列,并通过表面等离振子共振(SPR)和表面增强拉曼散射(SERS)对其进行表征。结果表明,这些金纳米线阵列表现出多个SP共振,可以通过调节NW的几何特征对其进行调谐。在一系列激发波长和包括罗丹明6G(R6G),酞嗪和单链寡核苷酸在内的许多模型化合物中,证实了金纳米线的SERS活性。根据基于离散偶极近似(DDA)的数值模拟,SERS增强源自位于各个NW内部和外部的高电磁场(热点)。另外,已经在具有亚波长节距尺寸的阵列中通过实验观察到了NW之间的远场互耦效应。我们显示,SERS增强因子也可以通过调整NW的几何形状进行调整和优化。

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