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具有高荧光增强的平面等离子体基底的制备与表征

Fabrication and Characterization of Planar Plasmonic Substrates with High Fluorescence Enhancement.

作者信息

Szmacinski Henryk, Badugu Ramachandram, Lakowicz Joseph R

机构信息

Center for Fluorescence Spectroscopy, Department of Biochemistry and Molecular Biology, University of Maryland Baltimore, 725 West Lombard Street, Baltimore, Maryland 21201, United States.

出版信息

J Phys Chem C Nanomater Interfaces. 2010 Dec 16;114(49):21142-21149. doi: 10.1021/jp107543v.

Abstract

The use of plasmonic nanostructures for fluorescence signal amplification is currently a very active research field. The detection of submonolayers of proteins labeled with organic dyes is a widely used technique in surface-based immunoassays and DNA hybridization. There is a strong interest in the development of new optical and chemical methods to increase the signal from ultralow concentrations of dyes on the surface of sensor substrates. Herein, we have explored the possibility of using vacuum-deposited silver nanostructures on dielectric layers and silver mirrors as potential plasmonic substrates that effectively amplify fluorescence over a broad spectral range. By optimizing deposition parameters for dielectric layers and silver nanostructures and applying thermal annealing processes, we observed large fluorescence amplifications from three different dye-strept(avidin) conjugates: about 7-fold for a UV/blue dye AF350-Av, 49-fold for a blue-green dye AF488-SA, and up to 208-fold for red-emitting AF647-SA dye. The observed amplification factors for the ensemble of fluorophores are very promising for development of surface-based bioassays. These substrates can be prepared using simple vacuum deposition in which we circumvent using the expensive nanofabrication methods. In addition, unlike most nanofabrication methods, the present approach is appropriate for large scale fabrication of substrates with microscope slide surface area suitable for sensing applications.

摘要

目前,利用等离子体纳米结构进行荧光信号放大是一个非常活跃的研究领域。检测用有机染料标记的蛋白质亚单层是基于表面的免疫分析和DNA杂交中广泛使用的技术。人们对开发新的光学和化学方法以增强传感器基底表面超低浓度染料的信号有着浓厚兴趣。在此,我们探索了在介电层和银镜上真空沉积银纳米结构作为潜在等离子体基底的可能性,这种基底能在很宽的光谱范围内有效放大荧光。通过优化介电层和银纳米结构的沉积参数并应用热退火工艺,我们观察到三种不同染料 - 链霉(抗生物素蛋白)缀合物有很大的荧光放大:紫外/蓝色染料AF350 - Av约为7倍,蓝绿色染料AF488 - SA为49倍,红色发射的AF647 - SA染料高达208倍。观察到的荧光团整体放大倍数对于基于表面的生物分析的发展非常有前景。这些基底可以通过简单的真空沉积制备,避免了使用昂贵的纳米制造方法。此外,与大多数纳米制造方法不同,本方法适用于大规模制造具有适合传感应用的显微镜载玻片表面积的基底。

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