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双粒子增强纳米拉曼显微镜与光谱学。

Two particle enhanced nano Raman microscopy and spectroscopy.

作者信息

Olk Phillip, Renger Jan, Härtling Thomas, Wenzel Marc Tobias, Eng Lukas M

机构信息

Institut für Angewandte Photophysik, TU Dresden, 01062 Dresden, Germany.

出版信息

Nano Lett. 2007 Jun;7(6):1736-40. doi: 10.1021/nl070727m. Epub 2007 May 11.

Abstract

The distance- and polarization-dependent near-field enhancement of two coupling metal nanoparticles (MNPs) is analyzed by means of the novel scanning particle enhanced Raman spectroscopy (SPRM) technique. In contrast to single MNP Raman experiments, the near-field coupling between two dissimilar MNPs as followed here leads to a Raman hot spot yielding an extra enhancement factor of 17.6 and 20, as proven here both in experiment and in theory. Three-dimensional electric field calculations for our two-particle arrangements were performed using the semianalytical multiple-multipole method. An excellent agreement is found to our experiments, in which we inspect the interaction between a "scanning" 30 nm gold MNP (Au30) and a "fixed" 80 nm Au MNP (Au80). The Au80 MNP is attached to the apex of an optical fiber manipulator and exposed to the Gaussian focus of a high NA = 1.45 objective at lambda = 532 nm. A monolayer of 1-octanethiol molecules covering the Au80 MNP serves as the electric field prober when scanning the Au30 MNP through the optical focus. This constellation allows recording the Raman signatures from a very low number of well-confined molecules. Moreover, also the spectral and spatial dependence could be explored with a superb sensitivity and very low integration time.

摘要

利用新型扫描粒子增强拉曼光谱(SPRM)技术分析了两个耦合金属纳米粒子(MNP)的距离和偏振相关近场增强。与单个MNP拉曼实验不同,此处研究的两个不同MNP之间的近场耦合导致拉曼热点,实验和理论均证明其产生了17.6和20的额外增强因子。使用半解析多极子方法对我们的双粒子排列进行了三维电场计算。计算结果与我们的实验结果非常吻合,在实验中我们研究了一个“扫描”的30纳米金MNP(Au30)和一个“固定”的80纳米金MNP(Au80)之间的相互作用。Au80 MNP附着在光纤操纵器的顶端,并在波长λ = 532纳米处暴露于高数值孔径NA = 1.45物镜的高斯焦点。当通过光学焦点扫描Au30 MNP时,覆盖Au80 MNP的单层1 - 辛硫醇分子用作电场探测器。这种配置允许记录来自极少数受限良好的分子的拉曼信号。此外,还可以以极高的灵敏度和极短的积分时间探索光谱和空间依赖性。

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