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首页> 外文期刊>ACS nano >Bimetallic 3D Nanostar Dimers in Ring Cavities: Recyclable and Robust Surface-Enhanced Raman Scattering Substrates for Signal Detection from Few Molecules
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Bimetallic 3D Nanostar Dimers in Ring Cavities: Recyclable and Robust Surface-Enhanced Raman Scattering Substrates for Signal Detection from Few Molecules

机译:环形腔中的双金属3D Nanostar二聚体:可回收且坚固的表面增强拉曼散射基质,可用于从少量分子中检测信号。

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摘要

Top-down fabrication of electron-beam lithography (EBL)-defined metallic nanostructures is a successful route to obtain extremely high electromagnetic field enhancement via plasmonic effects in well-defined regions. To this aim, various geometries have been introduced such as disks, triangles, dimers, rings, self-similar lenses, and more. In particular, metallic dimers are highly efficient for surface-enhanced Raman spectroscopy (SERS), and their decoupling from the substrate in a three-dimensional design has proven to further improve their performance. However, the large fabrication time and cost has hindered EBL-defined structures from playing a role in practical applications. Here we present three-dimensional nanostar dimer devices that can be recycled via maskless metal etching and deposition processes, due to conservation of the nanostructure pattern in the 3D geometry of the underlying Si substrate. Furthermore, our 3D-nanostar-dimer-in-ring structures (3D-NSDiRs) incorporate several advantageous aspects for SERS by enhancing the performance of plasmonic dimers via an external ring cavity, by efficient decoupling from the substrate through an elevated 3D design, and by bimetallic AuAg layers that exploit the increased performance of Ag while maintaining the biocompatibility of Au. We demonstrate SERS detection on rhodamine and adenine at extremely low density up to the limit of few molecules and analyze the field enhancement of the 3D-NSDiRs with respect to the exciting wavelength and metal composition.
机译:电子束光刻(EBL)定义的金属纳米结构的自顶向下制造是一种成功的途径,可通过在定义明确的区域中通过等离子体效应获得极高的电磁场增强。为了这个目的,已经引入了各种几何形状,例如圆盘,三角形,二聚体,环,自相似透镜等等。尤其是,金属二聚体对于表面增强拉曼光谱(SERS)而言非常高效,并且在三维设计中它们与基板的解耦已被证明可以进一步改善其性能。但是,大量的制造时间和成本阻碍了EBL定义的结构在实际应用中发挥作用。在这里,我们介绍了三维纳米星二聚体器件,由于纳米结构图案保留在下面的Si衬底的3D几何结构中,可以通过无掩模金属蚀刻和沉积工艺进行回收。此外,我们的3D纳米星状二聚体结构(3D-NSDiRs)结合了SERS的几个有利方面,即通过外环腔增强等离子体二聚体的性能,通过升高的3D设计与基板有效地解耦,以及通过利用双金属AuAg层来提高Ag的性能,同时保持Au的生物相容性。我们证明了若丹明和腺嘌呤的SERS检测具有极低的密度,可达到几个分子的极限,并针对激发波长和金属成分分析了3D-NSDiRs的场增强。

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