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用于高级振动探测的表面增强非线性拉曼过程

Surface Enhanced Nonlinear Raman Processes for Advanced Vibrational Probing.

作者信息

Kneipp Janina, Kneipp Katrin

机构信息

Humboldt-Universität zu Berlin, Department of Chemistry, Brook-Taylor-Str. 2, 12489 Berlin, Germany.

出版信息

ACS Nano. 2024 Aug 13;18(32):20851-20860. doi: 10.1021/acsnano.4c07508. Epub 2024 Aug 1.

Abstract

Surface enhanced Raman scattering (SERS) is not restricted to the well-known one-photon excited spontaneous Raman process that gives information on molecular composition, structure, and interaction through vibrational probing with high sensitivity. The enhancement mainly originates in high local fields, specifically those provided by localized surface plasmon resonances of metal nanostructures. High local fields can particularly support nonlinear Raman scattering, as it depends on the fields to higher powers. By revealing plasmon-molecule interactions, nonlinear Raman processes provide a very sensitive access to the properties of metal nanomaterials and their interfaces with molecules and other materials. This Perspective discusses plasmon-enhanced spontaneous and coherent nonlinear Raman scattering with the aim of identifying advantages that lead to an advanced vibrational characterization of such systems. The discussion will highlight the aspects of vibrational information that can be gained based on specific advantages of different incoherent and coherent Raman scattering and their surface enhancement. While the incoherent process of surface enhanced hyper Raman scattering (SEHRS) gives highly selective and spectral information complementary to SERS, the incoherent process of surface enhanced pumped anti-Stokes Raman scattering (SEPARS) can help to infer effective nonresonant SERS cross sections and allows to see "hot" vibrational transitions. Surface enhanced coherent anti-Stokes Raman scattering (SECARS) and surface enhanced stimulated Raman scattering (SESRS) combine the advantages of high local fields and coherence, which gives rise to high detection sensitivity and offers possibilities to explore molecule-plasmon interactions for a comprehensive characterization of composite and hybrid structures in materials research, catalysis, and nanobiophotonics.

摘要

表面增强拉曼散射(SERS)并不局限于众所周知的单光子激发自发拉曼过程,该过程通过高灵敏度的振动探测提供有关分子组成、结构和相互作用的信息。这种增强主要源于高局部场,特别是由金属纳米结构的局域表面等离子体共振提供的场。高局部场尤其可以支持非线性拉曼散射,因为它对场的依赖程度更高。通过揭示等离子体-分子相互作用,非线性拉曼过程为获取金属纳米材料及其与分子和其他材料的界面性质提供了一种非常灵敏的方法。本文综述了等离子体增强的自发和相干非线性拉曼散射,旨在确定有助于对这类系统进行先进振动表征的优势。讨论将突出基于不同非相干和相干拉曼散射及其表面增强的特定优势所能获得的振动信息方面。虽然表面增强超拉曼散射(SEHRS)的非相干过程提供了与SERS互补的高选择性和光谱信息,但表面增强泵浦反斯托克斯拉曼散射(SEPARS)的非相干过程有助于推断有效的非共振SERS截面,并能观察到“热”振动跃迁。表面增强相干反斯托克斯拉曼散射(SECARS)和表面增强受激拉曼散射(SESRS)结合了高局部场和相干性的优势,从而实现了高检测灵敏度,并为探索分子-等离子体相互作用提供了可能性,以便在材料研究、催化和纳米生物光子学中对复合和混合结构进行全面表征。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dbb1/11328166/c98163159340/nn4c07508_0001.jpg

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