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通过杂交银纳米结构形成的等离子体纳米间隙中,单分子荧光得到了极大增强。

Largely enhanced single-molecule fluorescence in plasmonic nanogaps formed by hybrid silver nanostructures.

机构信息

Center for Fluorescence Spectroscopy, Department of Biochemistry and Molecular Biology, University of Maryland School of Medicine, 725 W. Lombard Street, Baltimore, Maryland 21201, USA.

出版信息

Langmuir. 2013 Feb 26;29(8):2731-8. doi: 10.1021/la3048399. Epub 2013 Feb 14.

Abstract

It has been suggested that narrow gaps between metallic nanostructures can be practical for producing large field enhancement. We design a hybrid silver nanostructure geometry in which fluorescent emitters are sandwiched between silver nanoparticles and silver island film (SIF). A desired number of polyelectrolyte layers are deposited on the SIF surface before the self-assembly of a second silver nanoparticle layer. Layer-by-layer configuration provides a well-defined dye position. It allows us to study the photophyical behaviors of fluorophores in the resulting gap at the single molecule level. The enhancement factor of a fluorophore located in the gap is much higher than those on silver surfaces alone and on glass. These effects may be used for increased detectability of single molecules bound to surfaces which contain metallic structures for either biophysical studies or high sensitivity assays.

摘要

有人认为,金属纳米结构之间的狭窄间隙可用于产生较大的场增强。我们设计了一种混合银纳米结构几何形状,其中荧光发射器夹在银纳米粒子和银岛膜(SIF)之间。在自组装第二层银纳米粒子层之前,将所需数量的聚电解质层沉积在 SIF 表面上。逐层结构提供了明确的染料位置。这使我们能够在单个分子水平上研究所得间隙中荧光团的光物理行为。位于间隙中的荧光团的增强因子远高于单独在银表面和玻璃上的增强因子。这些效应可用于提高结合在含有金属结构的表面上的单个分子的检测灵敏度,无论是用于生物物理研究还是高灵敏度分析。

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