[1] LIU F F.Development and application of laser Raman spectroscopy[J].Technology and Market, 2014, 21(9):229(in Chinese).
[2] BUCKLEY K, MATOUSEK P. Non-invasive analysis of turbid samples using deep Raman spectroscopy[J]. Analyst, 2011, 136(15):3039-3050. doi: 10.1039/C0AN00723D
[3] MATOUSEK P. Deep non-invasive Raman spectroscopy of living tissue and powders[J]. Chemical Society Reviews, 2007, 36(8):1292-1304. doi: 10.1039/b614777c
[4] AI M, LIU J X, YAO H L. Raman spectra of individual reticulocytes and small lymphocytes in peripheral blood[J]. Chinese Journal of Optics, 2009, 29(4):1043-1048(in Chinese).
[5] TIAN G H, CHEN Y J, FENG Q M. The development and application of Raman spectroscopy[J].Chemical Engineer, 2008(1):34-36(in Chinese).
[6] PAN Zh Q, YANG J Q, DONG Q M, et al. Electronically controlled broadband continuous tuning of external cavity semiconductor lasers[J]. Chinese Journal of Lasers, 1998, 25(6):384-387(in Chinese).
[7] ZHANG H Y, PAN Zh Q, YANG J Q, et al.Tunable single mode narrow linewidth external cavity semiconductor laser[J]. Physics, 1995, 24(7):592-594(in Chinese).
[8] YU F, FANG Y, WANG Y L, et al. Study on the law of fluorescence quenching of dye molecules[J]. Acta Photonica Sinica, 1993, 22(3):1103-1106(in Chinese).
[9] HRBEK V, VACLAVIK L, ELICH O, et al. Authentication of milk and milk-based foods by direct analysis in real time ionization-high resolution mass spectrometry (DART-HRMS) technique:a critical assessment[J]. Food Control, 2014, 36(1):138-145.
[10] ALMEIDA M R, OLIVEIRA K D S, STEPHANI R, et al. Fourier-transform Raman analysis of milk powder:A potential method for rapid quality screening[J].Journal of Raman Spectroscopy, 2011, 42(7):1548-1552. doi: 10.1002/jrs.v42.7
[11] LIU Ch, HUANG W Q, WANG Q Y, et al. The application of Raman spectroscopy in food non-destructive testing[J]. Journal of Food Safety & Quality, 2015, 6(8):2981-2987(in Chinese).
[12] LEGER M N, RYDER A G. Comparison of derivative preprocessing and automated polynomial baseline correction method for classification and quantification of narcotics in solid mixtures[J]. Applied Spectroscopy, 2006, 60(2):182-193.
[13] JOHANNES K. Instantaneous shifted-excitation Raman difference spectroscopy(iSERDS)[J].Journal of Raman Spectroscopy, 2015, 45(10):980-983.
[14] LIANG L N, LIN L X, DONG Y X, et al. Identification of common explosives by Raman spectroscopy[J]. Criminal Technology, 2003(5):13-16(in Chinese).
[15] LIEBER C A, MAHADEVAN-JANSEN A. Automated methodfor subtraction of fluorescence from biological Raman spectra[J].Applied Spectroscopy, 2003, 57(11):1363-1367. doi: 10.1366/000370203322554518
[16] FRANK O, JEHLICKA J, EDWARDS H G. Raman spectroscopy as tool for the characterization of thio-polyaromatic hydrocarbons in organic minerals[J].Spectrochim Acta, 2007, A68(4):1065-1069.
[17] YU X C, GUANG L, YE F, et al. The causes of Raman spectral fluorescence interference of fuel oil and its treatment methods[J]. Journal of Logistics Engineering Institute, 2017, 33(1):28-37(in Chinese).
[18] YANG H.Research on several key technologies of portable Raman spectrometer[D]. Suzhou: Soochow University, 2014: 164-167(in Chinese).
[19] WU J L. Frequency-shift Raman spectroscopy system construction and algorithm implementation[D]. Xiamen: Xiamen University, 2015: 499-502(in Chinese).
[20] WANG F. Grating external tunable tunable semiconductor lasers for frequency-shift excitation Raman spectroscopy[D]. Xiamen: Xiamen University, 2016: 1023-1025(in Chinese).
[21] HU Y L, HUANG Y W, WANG R L, et al. The application of portable Raman spectroscopy in food inspection[J]. Food Industry Science and Technology, 2017, 38(17):319-323(in Chinese).