Surface-enhanced Raman spectroscopy

被引:0
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作者
Xiao Xia Han
Rebeca S. Rodriguez
Christy L. Haynes
Yukihiro Ozaki
Bing Zhao
机构
[1] Jilin University,State Key Laboratory of Supramolecular Structure and Materials, College of Chemistry
[2] University of Minnesota,Department of Chemistry
[3] Kwansei Gakuin University,Department of Biomedical Sciences, School of Biological and Environmental Sciences
来源
Nature Reviews Methods Primers | / 1卷
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摘要
Surface-enhanced Raman spectroscopy (SERS) is a highly sensitive technique that enhances the Raman scattering of molecules supported by some nanostructured materials. SERS allows for the structural fingerprinting of low-concentration analytes through the plasmon-mediated amplification of electrical fields or chemical enhancement. Owing to its ultra-high sensitivity and selectivity, SERS has a vast array of applications in surface and interface chemistry, catalysis, nanotechnology, biology, biomedicine, food science, environmental analysis and other areas. This Primer aims to provide interdisciplinary readers with key points regarding SERS methods. We briefly introduce the basic theories of SERS enhancement mechanisms. Details about SERS equipment, SERS-active material preparation and SERS measurements are summarized, followed by results and typical methods for data analysis. Recent applications of SERS in multiple research fields are then highlighted, including probing surface reactions and interfacial charge transfer, structural characterization and chemical/biological sensing. Furthermore, spectral reproducibility, SERS technical limitations and possible optimizations are discussed to provide readers with methodological guidance for the rational design of related studies. The Primer ends with a discussion of promising opportunities for SERS-based research in the future.
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