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增强拉曼光谱技术——从早期发展到最新进展。

Tip-enhanced Raman spectroscopy - from early developments to recent advances.

机构信息

Leibniz Institute of Photonic Technology, Jena, Germany.

出版信息

Chem Soc Rev. 2017 Jul 3;46(13):4077-4110. doi: 10.1039/c7cs00209b.

Abstract

An analytical technique operating at the nanoscale must be flexible regarding variable experimental conditions while ideally also being highly specific, extremely sensitive, and spatially confined. In this respect, tip-enhanced Raman scattering (TERS) has been demonstrated to be ideally suited to, e.g., elucidating chemical reaction mechanisms, determining the distribution of components and identifying and localizing specific molecular structures at the nanometre scale. TERS combines the specificity of Raman spectroscopy with the high spatial resolution of scanning probe microscopies by utilizing plasmonic nanostructures to confine the incident electromagnetic field and increase it by many orders of magnitude. Consequently, molecular structure information in the optical near field that is inaccessible to other optical microscopy methods can be obtained. In this general review, the development of this still-young technique, from early experiments to recent achievements concerning inorganic, organic, and biological materials, is addressed. Accordingly, the technical developments necessary for stable and reliable AFM- and STM-based TERS experiments, together with the specific properties of the instruments under different conditions, are reviewed. The review also highlights selected experiments illustrating the capabilities of this emerging technique, the number of users of which has steadily increased since its inception in 2000. Finally, an assessment of the frontiers and new concepts of TERS, which aim towards rendering it a general and widely applicable technique that combines the highest possible lateral resolution and extreme sensitivity, is provided.

摘要

分析技术在纳米尺度上必须灵活适应可变的实验条件,同时理想情况下还应具有高度特异性、极高的灵敏度和空间限制。在这方面,已证明尖端增强拉曼散射(TERS)非常适合于阐明化学反应机制、确定组件分布以及在纳米尺度上识别和定位特定分子结构等。TERS 通过利用等离子体纳米结构来限制入射电磁场并将其增强许多数量级,从而将拉曼光谱的特异性与扫描探针显微镜的高空间分辨率结合在一起。因此,可以获得其他光学显微镜方法无法获得的光学近场中的分子结构信息。在这篇综述中,讨论了这项仍然年轻的技术的发展,从早期实验到最近在无机、有机和生物材料方面的成就。因此,回顾了稳定可靠的 AFM 和 STM 基 TERS 实验所需的技术发展,以及不同条件下仪器的特定性质。该综述还突出了一些说明了这项新兴技术能力的实验,自 2000 年成立以来,使用这项技术的用户数量稳步增加。最后,对 TERS 的前沿和新概念进行了评估,旨在使其成为一种通用且广泛适用的技术,将尽可能高的横向分辨率和极端灵敏度结合在一起。

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