Unraveling surface-enhanced Raman spectroscopy results through chemometrics and machine learning: principles, progress, and trends

被引:54
作者
dos Santos, Diego P. P. [1 ]
Sena, Marcelo M. M. [2 ,3 ]
Almeida, Mariana R. R. [2 ]
Mazali, Italo O. O. [1 ]
Olivieri, Alejandro C. C. [4 ]
Villa, Javier E. L. [1 ]
机构
[1] Univ Estadual Campinas UNICAMP, Inst Quim, BR-13083970 Campinas, SP, Brazil
[2] Univ Fed Minas Gerais UFMG, Dept Quim, BR-31270901 Belo Horizonte, MG, Brazil
[3] Inst Nacl Ciencia & Tecnol Bioanalit INCT Bio, BR-13083970 Campinas, SP, Brazil
[4] Univ Nacl Rosario, Fac Ciencias Bioquim & Farmaceut, Dept Quim Analit, Inst Quim Rosario IQUIR CONICET, Suipacha 531, RA-2000 Rosario, Argentina
关键词
Nanomaterials; Vibrational spectroscopy; Plasmonics; Data analysis; Supervised methods; PCA; ELECTROMAGNETIC SCATTERING; DISCRIMINANT-ANALYSIS; RAPID IDENTIFICATION; SERS SUBSTRATE; DIFFERENTIATION; QUANTIFICATION; CLASSIFICATION; VALIDATION; REGRESSION; AGGREGATE;
D O I
10.1007/s00216-023-04620-y
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Surface-enhanced Raman spectroscopy (SERS) has gained increasing attention because it provides rich chemical information and high sensitivity, being applicable in many scientific fields including medical diagnosis, forensic analysis, food control, and microbiology. Although SERS is often limited by the lack of selectivity in the analysis of samples with complex matrices, the use of multivariate statistics and mathematical tools has been demonstrated to be an efficient strategy to circumvent this issue. Importantly, since the rapid development of artificial intelligence has been promoting the implementation of a wide variety of advanced multivariate methods in SERS, a discussion about the extent of their synergy and possible standardization becomes necessary. This critical review comprises the principles, advantages, and limitations of coupling SERS with chemometrics and machine learning for both qualitative and quantitative analytical applications. Recent advances and trends in combining SERS with uncommonly used but powerful data analysis tools are also discussed. Finally, a section on benchmarking and tips for selecting the suitable chemometric/machine learning method is included. We believe this will help to move SERS from an alternative detection strategy to a general analytical technique for real-life applications.
引用
收藏
页码:3945 / 3966
页数:22
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