Rayleigh scattering correction for fluorescence spectroscopy analysis

被引:18
|
作者
Tan, Lin [1 ]
Du, Wen [1 ,3 ]
Zhang, Yan [2 ]
Tang, Li-Juan [1 ]
Jiang, Jian-Hui [1 ]
Yu, Ru-Qin [1 ]
机构
[1] Hunan Univ, Coll Chem & Chem Engn, State Key Lab Chemo Biosensing & Chemometr, Lab Tobacco Chem, Changsha 410082, Hunan, Peoples R China
[2] Yangtze Univ, Coll Life Sci, Jingzhou 434025, Peoples R China
[3] China Tobacco Hunan Ind Co Ltd, Technol Ctr, Changsha 410007, Peoples R China
基金
中国国家自然科学基金;
关键词
Fluorescence spectroscopy; Rayleigh scattering; Missing data recovery (MDR); Principal component analysis (PCA); Parallel factor analysis (PARAFAC); PARAFAC; DECOMPOSITION; CALIBRATION; ALGORITHM;
D O I
10.1016/j.chemolab.2020.104028
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Rayleigh scattering signals, not conforming bilinear and trilinear structure of spectral excitation-emission matrices (EEMs), significantly increases the difficulty of spectral resolution. To eliminate or reduce the interference of Rayleigh scattering, we propose missing data recovery (MDR) coupled with principal component analysis (PCA) or parallel factor analysis (PARAFAC) as a novel strategy for Rayleigh scattering correction and corresponding EEM decomposition. MDR treats the scattering data as missing by weighting them as zeros to remove Rayleigh scattering signals thoroughly. Then, sample signals are dramatically recovery in the scattering missing region during rapid iterative process of PCA or PARAFAC to repair bilinearity and trilinearity of EEMs. For significant Rayleigh scattering leading to severe signal loss, profile constraint on both of excitation and emission spectra following fluorescence spectral laws is further proposed for MDR-PCA and MDR-PARAFAC. It is so as to avoid mathematical reasonable but chemical meaningless solutions. The results reveal MDR-PCA and MDR-PARAFAC enable robust Rayleigh scattering correction and EEM decomposition both for simulated and practical data sets. Without the need of any specific priori knowledge and pretreatment such as wavelength selection, it therefore suggests great potential of the proposed method to be a generalized strategy for robust Rayleigh scattering correction and spectral resolution of EEMs.
引用
收藏
页数:19
相关论文
共 50 条
  • [21] ABSORPTION AND SCATTERING CORRECTION IN FLUORESCENCE CONFOCAL MICROSCOPY
    VISSER, TD
    GROEN, FCA
    BRAKENHOFF, GJ
    JOURNAL OF MICROSCOPY-OXFORD, 1991, 163 : 189 - 200
  • [22] Qualitative and quantitative analysis of curcumin in dried ginger by the resonance Rayleigh scattering technique and absorption spectroscopy
    Liu, Yan
    Jiang, Hong
    JOURNAL OF FOOD COMPOSITION AND ANALYSIS, 2023, 115
  • [23] Correction of the afterpulsing effect in fluorescence correlation spectroscopy using time symmetry analysis
    Ishii, Kunihiko
    Tahara, Tahei
    OPTICS EXPRESS, 2015, 23 (25): : 32387 - 32400
  • [24] Raman Spectroscopy Fluorescence Background Correction and Its Application in Clustering Analysis of Medicines
    Chen Shan
    Li Xiao-ning
    Liang Yi-zeng
    Zhang Zhi-min
    Liu Zhao-xia
    Zhang Qi-ming
    Ding Li-xia
    Ye Pei
    SPECTROSCOPY AND SPECTRAL ANALYSIS, 2010, 30 (08) : 2157 - 2160
  • [25] Analysis of protein-nucleic interactions by dynamic light scattering and fluorescence spectroscopy
    Danilova, IG
    BIOPHYSICAL JOURNAL, 2003, 84 (02) : 368A - 368A
  • [26] Correction method of the fluorescence intensity of petroleum hydrocarbons in different soil types based on resonance scattering spectroscopy
    Yang, Jinqiang
    Yang, Ruifang
    Zhao, Nanjing
    Shi, Gaoyong
    Liu, Wenqing
    SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 2023, 303
  • [27] Light scattering corrections to linear dichroism spectroscopy for liposomes in shear flow using calcein fluorescence and modified Rayleigh-Gans-Debye-Mie scattering
    Dorrington G.
    Chmel N.P.
    Norton S.R.
    Wemyss A.M.
    Lloyd K.
    Praveen Amarasinghe D.
    Rodger A.
    Biophysical Reviews, 2018, 10 (5) : 1385 - 1399
  • [28] OPTICAL FREQUENCY-SHIFTING FOR RAYLEIGH-SCATTERING SPECTROSCOPY
    YOSHIMURA, T
    SYOJI, Y
    WAKABAYASHI, N
    SUZUKI, N
    JOURNAL OF PHYSICS E-SCIENTIFIC INSTRUMENTS, 1978, 11 (08): : 777 - 780
  • [29] Bragg spectroscopy and superradiant Rayleigh scattering in a Bose–Einstein condensate
    J. Stenger
    S. Inouye
    D.M. Stamper-Kurn
    A.P. Chikkatur
    D.E. Pritchard
    W. Ketterle
    Applied Physics B, 1999, 69 : 347 - 352
  • [30] Microdetermination of proteins by enhanced rayleigh light scattering spectroscopy with thorin
    Chen, LH
    Zhao, FL
    Li, KA
    CHINESE JOURNAL OF CHEMISTRY, 2002, 20 (04) : 368 - 373