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Single-molecule and single-particle-based correlation studies between localized surface plasmons of dimeric nanostructures with ~1 nm gap and surface-enhanced Raman scattering

机译:约1 nm间隙的二聚体纳米结构的局部表面等离子体激元与表面增强拉曼散射之间基于单分子和单颗粒的相关性研究

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Understanding the detailed electromagnetic field distribution inside a plasmonically coupled nanostructure, especially for structures with ~1 nm plasmonic gap, is the fundamental basis for the control and use of the strong optical properties of plasmonic nanostructures. Using a multistep AFM tip-matching strategy that enables us to gain the optical spectra with the optimal signal-to-noise ratio as well as high reliability in correlation measurement between localized surface plasmon (LSP) and surface-enhanced Raman scattering (SERS), the coupled longitudinal dipolar and high-order multipolar LSPs were detected within a dimeric structure, where a single Raman dye is located via a single-DNA hybridization between two differently sized Au-Ag core-shell particles. On the basis of the characterization of each LSP component, the distinct phase differences, attributed to different quantities of the excited quadrupolar LSPs, between the transverse and longitudinal regimes were observed for the first time. By assessing the relative ratio of dipolar and quadrupolar LSPs, we found that these LSPs of the dimer with ~1 nm gap were simultaneously excited, and large longitudinal bonding dipolar LSP/longitudinal bonding quadrupolar LSP value is required to generate high SERS signal intensity. Interestingly, a minor population of the examined dimers exhibited strong SERS intensities along not only the dimer axis but also the direction that arises from the interaction between the coupled transverse dipolar and longitudinal bonding quadrupolar LSPs. Overall, our high-precision correlation measurement strategy with a plasmonic heterodimer with ~1 nm gap allows for the observation of the characteristic spectral features with the optimal signal-to-noise ratio and the subpopulation of plasmonic dimers with a distinct SERS behavior, hidden by a majority of dimer population, and the method and results can be useful in understanding the whole distribution of SERS enhancement factor values and designing plasmonic nanoantenna structures.
机译:了解等离子体耦合纳米结构内部的详细电磁场分布,特别是对于具有〜1 nm等离子体间隙的结构,是控制和利用等离子体纳米结构强光学特性的基础。使用多步AFM尖端匹配策略,使我们能够以最佳信噪比获得光谱,并且在局部表面等离子体激元(LSP)和表面增强拉曼散射(SERS)之间的相关性测量中具有很高的可靠性,在二聚体结构中检测到耦合的纵向偶极和高阶多极LSP,其中单个拉曼染料通过两个不同大小的Au-Ag核-壳颗粒之间的单DNA杂交而定位。根据每个LSP组分的特征,首次观察到横向和纵向区域之间存在明显的相位差,这是由于激发四极LSP的数量不同所致。通过评估偶极和四极LSP的相对比率,我们发现这些间隙约为1 nm的二聚体LSP同时被激发,需要较大的纵向键合偶极LSP /纵向键合四极LSP值才能产生较高的SERS信号强度。有趣的是,少数检查的二聚体不仅沿二聚体轴而且沿耦合的横向偶极和纵向键合四极LSP之间的相互作用产生的方向均显示出较强的SERS强度。总体而言,我们的高精密度相关测量策略采用间隙约为1 nm的等离激元异二聚体,可观察具有最佳信噪比的特征光谱特征以及具有明显SERS行为的等离激元二聚体亚群,并隐藏大多数二聚体群体,该方法和结果对于理解SERS增强因子值的整体分布以及设计等离子体纳米天线结构很有用。

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