Online coupling of high-performance liquid chromatography with surface-enhanced Raman spectroscopy for the identification of historical dyes

被引:37
|
作者
Zaffino, Chiara [1 ]
Bedini, Giulia Dulcedo [1 ]
Mazzola, Giorgio [2 ]
Guglielmi, Vittoria [1 ]
Bruni, Silvia [1 ]
机构
[1] Univ Milan, Dipartimento Chim, Via C Golgi 19, I-20133 Milan, Italy
[2] Jasco Europe, Cremella, LC, Italy
关键词
high-performance liquid chromatography; surface-enhanced Raman spectroscopy; dyes; hyphenated technique; textiles; art; WINDOWLESS FLOW CELL; SILVER COLLOIDS; NATURAL DYES; ORGANIC COLORANTS; SYNTHETIC DYES; PURINE-BASES; TLC-SERS; SCATTERING; SUBSTRATE; SPECTROMETRY;
D O I
10.1002/jrs.4867
中图分类号
O433 [光谱学];
学科分类号
0703 ; 070302 ;
摘要
High-performance liquid chromatography (HPLC) is still, today, the technique of choice for the analysis of natural dyes in artistic objects and historical textiles, particularly in association with photodiode array (PDA) detection. In the last two decades, surface-enhanced Raman spectroscopy (SERS) gained also increasing importance for these investigations thanks to its sensitivity and limited requirements in terms of sample quantity. In favor of SERS, its high specificity in molecular recognition typical of vibrational spectroscopy should be mentioned, whereas this non-separative technique is obviously disadvantaged in the analyses of mixed chromophores, as is often the case of many natural dyes and also of tints obtained by the combined use of different colorants. An optimized experimental setup combining the two techniques, HPLC-PDA and SERS, is proposed in the present work, allowing online SERS detection of different dyeing compounds eluted from the HPLC column. Examples are presented concerning some of the colorants most widely used in history, such as morin and luteolin for yellow dyes, alizarin, purpurin, laccaic, kermesic, and carminic acids for red ones, and indigotin for blue tints. Copyright (C) 2016 John Wiley & Sons, Ltd.
引用
收藏
页码:607 / 615
页数:9
相关论文
共 50 条
  • [31] Rapid biological agent identification by surface-enhanced Raman spectroscopy
    Farquharson, S
    Smith, WW
    Elliott, S
    Sperry, JF
    AIR MONITORING AND DETECTION OF CHEMICAL AND BIOLOGICAL AGENTS II, 1999, 3855 : 110 - 116
  • [32] Rapid chemical agent identification by surface-enhanced Raman spectroscopy
    Lee, YH
    Farquharson, S
    CHEMICAL AND BIOLOGICAL SENSING II, 2001, 4378 : 21 - 26
  • [33] Surface-enhanced Raman spectroscopy: a half-century historical perspective
    Yi, Jun
    You, En-Ming
    Hu, Ren
    Wu, De-Yin
    Liu, Guo-Kun
    Yang, Zhi-Lin
    Zhang, Hua
    Gu, Yu
    Wang, Yao-Hui
    Wang, Xiang
    Ma, Hao
    Yang, Yang
    Liu, Jun-Yang
    Fan, Feng Ru
    Zhan, Chao
    Tian, Jing-Hua
    Qiao, Yu
    Wang, Hailong
    Luo, Si-Heng
    Meng, Zhao-Dong
    Mao, Bing-Wei
    Li, Jian-Feng
    Ren, Bin
    Aizpurua, Javier
    Apkarian, Vartkess Ara
    Bartlett, Philip N.
    Baumberg, Jeremy
    Bell, Steven E. J.
    Brolo, Alexandre G.
    Brus, Louis E.
    Choo, Jaebum
    Cui, Li
    Deckert, Volker
    Domke, Katrin F.
    Dong, Zhen-Chao
    Duan, Sai
    Faulds, Karen
    Frontiera, Renee
    Halas, Naomi
    Haynes, Christy
    Itoh, Tamitake
    Kneipp, Janina
    Kneipp, Katrin
    Le Ru, Eric C.
    Li, Zhi-Peng
    Ling, Xing Yi
    Lipkowski, Jacek
    Liz-Marzan, Luis M.
    Nam, Jwa-Min
    Nie, Shuming
    CHEMICAL SOCIETY REVIEWS, 2025, 54 (03) : 1453 - 1551
  • [34] Perfluorodecanethiol-Functionalized Silver Nanoparticles on Polyester Films as High-Performance Surface-Enhanced Raman Spectroscopy Substrates
    Li, Wei
    Zhang, Tingting
    Wu, Shiying
    Zhang, Lan
    Li, Lujie
    Xu, Tao
    Wang, Lingling
    Liu, Chang
    Li, Weihua
    Lu, Rui
    APPLIED SPECTROSCOPY, 2025, 79 (03) : 447 - 457
  • [35] Hydrophobic multiscale cavities for high-performance and self-cleaning surface-enhanced Raman spectroscopy (SERS) sensing
    Zhao, Xiaofei
    Liu, Chundong
    Yu, Jing
    Li, Zhen
    Liu, Lu
    Li, Chonghui
    Xu, Shicai
    Li, Weifeng
    Man, Baoyuan
    Zhang, Chao
    NANOPHOTONICS, 2020, 9 (16) : 4761 - 4773
  • [36] Quantitative online sheath-flow surface enhanced Raman spectroscopy detection for liquid chromatography
    Anh Nguyen
    Schultz, Zachary D.
    ANALYST, 2016, 141 (12) : 3630 - 3635
  • [37] Rapid Detection of Banned Dyes in Textiles Based on Surface-enhanced Raman Spectroscopy
    Pan Jing
    Xu Minmin
    Yuan Yaxian
    Yao Jianlin
    CHEMICAL JOURNAL OF CHINESE UNIVERSITIES-CHINESE, 2021, 42 (12): : 3716 - 3721
  • [38] Tracking photo-degradation of triarylmethane dyes with surface-enhanced Raman spectroscopy
    Cesaratto, Anna
    Lombardi, John R.
    Leona, Marco
    JOURNAL OF RAMAN SPECTROSCOPY, 2017, 48 (03) : 418 - 424
  • [39] Surface-enhanced Raman spectroscopy of dyes: from single molecules to the artists' canvas
    Wustholz, Kristin L.
    Brosseau, Christa L.
    Casadio, Francesca
    Van Duyne, Richard P.
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2009, 11 (34) : 7350 - 7359
  • [40] Characterization of aminotriphenylmethane dyes by TLC coupled with surface-enhanced resonance Raman spectroscopy
    Somsen, GW
    terRiet, PGJH
    Gooijer, C
    Velthorst, NH
    Brinkman, UAT
    JPC-JOURNAL OF PLANAR CHROMATOGRAPHY-MODERN TLC, 1997, 10 (01) : 10 - 17