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篇名
Raman spectroscopy in the analysis of food and pharmaceutical nanomaterials
並列篇名
Raman spectroscopy in the analysis of food and pharmaceutical nanomaterials
作者 Ying-Sing Li (Ying-Sing Li)Jeffrey S. Church (Jeffrey S. Church)
英文摘要
Raman scattering is an inelastic phenomenon. Although its cross section is very small, recent advances in electronics, lasers, optics, and nanotechnology have made Raman spectroscopy suitable in many areas of application. The present article reviews the applications of Raman spectroscopy in food and drug analysis and inspection, including those associated with nanomaterials. Brief overviews of basic Raman scattering theory, instrumentation, and statistical data analysis are also given. With the advent of Raman enhancement mechanisms and the progress being made in metal nanomaterials and nanoscale metal surfaces fabrications, surface enhanced Raman scattering spectroscopy has become an extra sensitive method, which is applicable not only for analysis of foods and drugs, but also for intracellular and intercellular imaging. A Raman spectrometer coupled with a fiber optics probe has great potential in applications such as monitoring and quality control in industrial food processing, food safety in agricultural plant production, and convenient inspection of pharmaceutical products, even through different types of packing. A challenge for the routine application of surface enhanced Raman scattering for quantitative analysis is reproducibility. Success in this area can be approached with each or a combination of the following methods: (1) fabrication of nanostructurally regular and uniform substrates; (2) application of statistic data analysis; and (3) isotopic dilution.
起訖頁 29-48
關鍵詞 FoodNanomaterialsPharmaceuticalsRaman cell imagingRaman spectroscopy
刊名 JOURNAL OF FOOD AND DRUG ANALYSIS  
期數 201401 (22:1期)
出版單位 衛生福利部食品藥物管理署
該期刊-上一篇 Cell microenvironment stimuli-responsive controlled-release delivery systems based on mesoporous silica nanoparticles
該期刊-下一篇 Electron spin resonance spectroscopy for the study of nanomaterial-mediated generation of reactive oxygen species
 

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