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采用单脉冲紫外激光处理金、银薄膜的方法制备均匀的表面增强拉曼散射基底及其性能表征。

Fabrication and characterization of homogeneous surface-enhanced Raman scattering substrates by single pulse UV-laser treatment of gold and silver films.

机构信息

Department of Photonic Sensor Technologies, Laser-Laboratorium Göttingen e.V., Göttingen.

出版信息

Langmuir. 2010 Dec 7;26(23):18564-9. doi: 10.1021/la103021g. Epub 2010 Nov 2.

DOI:10.1021/la103021g
PMID:21043441
Abstract

The fabrication of SERS-active substrates, which offer high enhancement factors as well as spatially homogeneous distribution of the enhancement, plays an important role in the expansion of surface-enhanced Raman scattering (SERS) spectroscopy to a powerful, quantitative, and noninvasive measurement technique for analytical applications. In this paper, a novel method for the fabrication of SERS-active substrates by laser treatment of 20, 40, and 60 nm thick gold and of 40 nm thick silver films supported on quartz glass is presented. Single 308 nm UV-laser pulses were applied to melt the thin gold and silver films. During the cooling process of the noble metal, particles were formed. The particle size and density were imaged by atomic force microscopy. By varying the fluence, the size of the particles can be controlled. The enhancement factors of the nanostructures were determined by recording self-assembled monolayers of benzenethiol. The intensity of the SERS signal from benzenethiol is correlated to the mean particle size and thus to the fluence. Enhancement factors up to 10(6) with a high reproducibility were reached. Finally we have analyzed the temperature dependence of the SERS effect by recording the intensity of benzenethiol vibrations from 300 to 120 K. The temperature dependence of the SERS effect is discussed with regard to the metal properties.

摘要

用于表面增强拉曼散射 (SERS) 光谱分析的基底的制造在 SERS 光谱扩展为强大、定量且非侵入式测量技术的过程中扮演着重要的角色。在本文中,我们提出了一种通过激光处理在石英玻璃上的 20、40 和 60nm 厚的金以及 40nm 厚的银膜来制备 SERS 活性基底的新方法。单束 308nm 的紫外激光脉冲被用来融化这些薄金和银膜。在贵金属冷却的过程中,形成了颗粒。通过原子力显微镜对颗粒的大小和密度进行成像。通过改变激光的能量密度,可以控制颗粒的大小。通过记录苯硫醇的自组装单层来确定纳米结构的增强因子。苯硫醇的 SERS 信号强度与平均颗粒尺寸相关,进而与激光的能量密度相关。达到了高达 10^6 的增强因子,且具有很高的重现性。最后,我们通过记录 300 到 120K 范围内苯硫醇振动的强度来分析 SERS 效应的温度依赖性。根据金属性质讨论了 SERS 效应的温度依赖性。

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