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偏振控制拉曼显微镜和纳米显微镜

Polarization-Controlled Raman Microscopy and Nanoscopy.

作者信息

Saito Yuika, Verma Prabhat

机构信息

Department of Applied Physics, Osaka University, 2-1 Yamadaoka, Suita, Osaka, 565-0871 Japan.

出版信息

J Phys Chem Lett. 2012 May 17;3(10):1295-300. doi: 10.1021/jz300213t. Epub 2012 May 1.

Abstract

Polarization imaging reveals unique characteristics of samples, such as molecular symmetry, orientation, or intermolecular interactions. Polarization techniques extend the ability of conventional spectroscopy to enable the characterization and identification of molecular species. In the early days of spectroscopy, it was considered that a set of polarizers placed in the illumination and the detection paths was enough to enable polarization analysis. However, with the development of new microscope imaging techniques, such as high-resolution microscopy, nonlinear spectroscopic imaging, and near-field microscopy, the inevitable polarization changes caused by external optical components needs to be discussed. In this Perspective, we present some of the hot topics that are specific to high-spatial-resolution microscopy and introduce recent related work in the field. Among the many spectroscopic techniques available, we focus in particular on Raman spectroscopy because Raman tensors are widely used in pure and applied sciences to study the symmetry of matter.

摘要

偏振成像揭示了样品的独特特性,如分子对称性、取向或分子间相互作用。偏振技术扩展了传统光谱学的能力,能够对分子种类进行表征和识别。在光谱学的早期,人们认为在照明和检测路径中放置一组偏振器就足以进行偏振分析。然而,随着高分辨率显微镜、非线性光谱成像和近场显微镜等新的显微镜成像技术的发展,需要讨论由外部光学元件引起的不可避免的偏振变化。在这篇综述中,我们介绍了一些高空间分辨率显微镜特有的热门话题,并介绍了该领域最近的相关工作。在众多可用的光谱技术中,我们特别关注拉曼光谱,因为拉曼张量在纯科学和应用科学中被广泛用于研究物质的对称性。

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