[1] GARCIA-RICO E, ALVAREZ-PUEBLA R A, GUERRINI L. Direct surface-enhanced Raman scattering (SERS) spectroscopy of nucleic acids: from fundamental studies to real-life applications[J]. Chem Soc Rev,2018,47(13):4909-4923. doi:  10.1039/C7CS00809K
[2] PILOT R, SIGNORINI R, DURANTE C, et al. A review on surface-enhanced Raman scattering[J]. Biosensors,2019,9(2):57. doi:  10.3390/bios9020057
[3] ZONG C, XU M X, XU L J, et al. Surface-enhanced Raman spectroscopy for bioanalysis: reliability and challenges[J]. Chem Rev,2018,118(10):4946-4980. doi:  10.1021/acs.chemrev.7b00668
[4] WU M R, LI H, LV D Y, et al. Dynamic-SERS spectroscopy for the in situ discrimination of xanthine analogues in ternary mixture[J]. Anal Bioanal Chem,2017,409(23):5569-5579. doi:  10.1007/s00216-017-0495-3
[5] ZHU Q X, CAO Y B, CAO Y Y, et al. Rapid on-site TLC-SERS detection of four antidiabetes drugs used as adulterants in botanical dietary supplements[J]. Anal Bioanal Chem,2014,406(7):1877-1884. doi:  10.1007/s00216-013-7605-7
[6] SMITH R, WRIGHT K L, ASHTON L. Raman spectroscopy: an evolving technique for live cell studies[J]. Analyst,2016,141(12):3590-3600. doi:  10.1039/C6AN00152A
[7] BUTLER H J, ASHTON L, BIRD B, et al. Using Raman spectroscopy to characterize biological materials[J]. Nat Protoc,2016,11(4):664-687. doi:  10.1038/nprot.2016.036
[8] ZHANG Y, ZHAO S J, ZHENG J K, et al. Surface-enhanced Raman spectroscopy (SERS) combined techniques for high-performance detection and characterization[J]. Trac Trends Anal Chem,2017,90:1-13. doi:  10.1016/j.trac.2017.02.006
[9] NIE S, EMORY S R. Probing single molecules and single nanoparticles by surface-enhanced Raman scattering[J]. Science,1997,275(5303):1102-1106. doi:  10.1126/science.275.5303.1102
[10] XIE X H, PU H B, SUN D W. Recent advances in nanofabrication techniques for SERS substrates and their applications in food safety analysis[J]. Crit Rev Food Sci Nutr,2018,58(16):2800-2813. doi:  10.1080/10408398.2017.1341866
[11] LI P, HE H, LIN D Y, et al. Highly sensitive detection of an antidiabetic drug as illegal additives in health products using solvent microextraction combined with surface-enhanced Raman spectroscopy[J]. Analyst,2019,144(24):7406-7411. doi:  10.1039/C9AN01688K
[12] ZHANG D, LIANG P, YE J M, et al. Detection of systemic pesticide residues in tea products at trace level based on SERS and verified by GC-MS[J]. Anal Bioanal Chem,2019,411(27):7187-7196. doi:  10.1007/s00216-019-02103-7
[13] SONG D, YANG R, LONG F, et al. Applications of magnetic nanoparticles in surface-enhanced Raman scattering (SERS) detection of environmental pollutants[J]. J Environ Sci (China),2019,80:14-34. doi:  10.1016/j.jes.2018.07.004
[14] BARHOUMI A, ZHANG D M, TAM F, et al. Surface-enhanced Raman spectroscopy of DNA[J]. J Am Chem Soc,2008,130(16):5523-5529. doi:  10.1021/ja800023j
[15] MA H, TANG X F, LIU Y W, et al. Surface-enhanced Raman scattering for direct protein function investigation: controlled immobilization and orientation[J]. Anal Chem,2019,91(14):8767-8771. doi:  10.1021/acs.analchem.9b01956
[16] GAO W C, LI B, YAO R Z, et al. Intuitive label-free SERS detection of bacteria using aptamer-based in situ silver nanoparticles synthesis[J]. Anal Chem,2017,89(18):9836-9842. doi:  10.1021/acs.analchem.7b01813
[17] HE X N, WANG Y N, WANG Y, et al. Accurate quantitative detection of cell surface sialic acids with a background-free SERS probe[J]. Talanta,2020,209:120579. doi:  10.1016/j.talanta.2019.120579
[18] BROSSEAU C L, GAMBARDELLA A, CASADIO F, et al. Ad-hoc surface-enhanced Raman spectroscopy methodologies for the detection of artist dyestuffs: thin layer chromatography-surface enhanced Raman spectroscopy and in situ on the fiber analysis[J]. Anal Chem,2009,81(8):3056-3062. doi:  10.1021/ac802761v
[19] LIAO W, LU X N. Determination of chemical hazards in foods using surface-enhanced Raman spectroscopy coupled with advanced separation techniques[J]. Trends Food Sci Technol,2016,54:103-113. doi:  10.1016/j.jpgs.2016.05.020
[20] ANSARI S A, MOHAPATRA P K. A review on solid phase extraction of actinides and lanthanides with amide based extractants[J]. J Chromatogr A,2017,1499:1-20. doi:  10.1016/j.chroma.2017.03.035
[21] YU S H, LIU Z G, LI H W, et al. Combination of a graphene SERS substrate and magnetic solid phase micro-extraction used for the rapid detection of trace illegal additives[J]. Analyst,2018,143(4):883-890. doi:  10.1039/C7AN01547J
[22] WANG J, RIOS A, LISOVA K, et al. High-throughput radio-TLC analysis[J]. Nucl Med Biol,2020,82-83:41-48. doi:  10.1016/j.nucmedbio.2019.12.003
[23] HEMDAN ABOU-TALEB N, MAHMOUD EL-ENANY N, TAWFIK EL-SHERBINY D, et al. Digitally enhanced thin layer chromatography for simultaneous determination of norfloxacin and tinidazole with the aid of Taguchi orthogonal array and desirability function approach: Greenness assessment by analytical Eco-Scale[J]. J Sep Sci,2020,43(6):1195-1202. doi:  10.1002/jssc.201900997
[24] CIURA K, DZIOMBA S, NOWAKOWSKA J, et al. Thin layer chromatography in drug discovery process[J]. J Chromatogr A,2017,1520:9-22. doi:  10.1016/j.chroma.2017.09.015
[25] CHEN J, ABELL J, HUANG Y W, et al. On-chip ultra-thin layer chromatography and surface enhanced Raman spectrosco-py[J]. Lab Chip,2012,12(17):3096-3102. doi:  10.1039/c2lc40221a
[26] HERMAN K, MIRCESCU N E, SZABO L, et al. In situ silver spot preparation and on-plate surface-enhanced Raman scattering detection in thin layer chromatography separation[J]. J Appl Spectrosc,2013,80(2):311-314. doi:  10.1007/s10812-013-9765-9
[27] TAN A L, ZHAO Y, SIVASHANMUGAN K, et al. Quantitative TLC-SERS detection of histamine in seafood with support vector machine analysis[J]. Food Control,2019,103:111-118. doi:  10.1016/j.foodcont.2019.03.032
[28] GEIMAN I, LEONA M, LOMBARDI J R. Application of Raman spectroscopy and surface-enhanced Raman scattering to the analysis of synthetic dyes found in ballpoint pen inks[J]. J Forensic Sci,2009,54(4):947-952. doi:  10.1111/j.1556-4029.2009.01058.x
[29] MARGHANY K A, ABDELSALAM R A, HADDAD G M. HPLC method transfer study for simultaneous determination of seven angiotensin II receptor blockers[J]. J Sep Sci,2020,43(8):1398-1405. doi:  10.1002/jssc.201900534
[30] NARUKAWA T, IWAI T, CHIBA K. Simultaneous speciation analysis of inorganic arsenic and methylmercury in edible oil by high-performance liquid chromatography-inductively coupled plasma mass spectrometry[J]. Talanta,2020,210:120646. doi:  10.1016/j.talanta.2019.120646
[31] SHENG R S, NI F, COTTON T M. Determination of purine bases by reversed-phase high-performance liquid chromatography using real-time surface-enhanced Raman spectroscopy[J]. Anal Chem,1991,63(5):437-442. doi:  10.1021/ac00005a010
[32] WANG W, XU M M, GUO Q H, et al. Rapid separation and on-line detection by coupling high performance liquid chromatography with surface-enhanced Raman spectroscopy[J]. RSC Adv,2015,5(59):47640-47646. doi:  10.1039/C5RA05562H
[33] GAO Y L, HUANG X X, ZHU Y B, et al. A brief review of monoclonal antibody technology and its representative applications in immunoassays[J]. J Immunoassay Immunochem,2018,39(4):351-364. doi:  10.1080/15321819.2018.1515775
[34] LIU J, YU Q Q, ZHAO G Y, et al. A novel immunochromatographic assay using ultramarine blue particles as visible label for quantitative detection of hepatitis B virus surface antigen[J]. Anal Chim Acta,2020,1098:140-147. doi:  10.1016/j.aca.2019.11.037
[35] CHO I H, BHANDARI P, PATEL P, et al. Membrane filter-assisted surface enhanced Raman spectroscopy for the rapid detection of E. coli O157: H7 in ground beef[J]. Biosens Bioelectron,2015,64:171-176. doi:  10.1016/j.bios.2014.08.063
[36] GUARROTXENA N, LIU B, FABRIS L, et al. Antitags: nanostructured tools for developing SERS-based ELISA analogs[J]. Adv Mater,2010,22(44):4954-4958. doi:  10.1002/adma.201002369
[37] PEKDEMIR M E, ERTÜRKAN D, KÜLAH H, et al. Ultrasensitive and selective homogeneous sandwich immunoassay detection by Surface Enhanced Raman Scattering (SERS)[J]. Analyst,2012,137(20):4834-4840. doi:  10.1039/c2an35471c
[38] LI M, BANERJEE S R, ZHENG C, et al. Ultrahigh affinity Raman probe for targeted live cell imaging of prostate cancer[J]. Chem Sci,2016,7(11):6779-6785. doi:  10.1039/C6SC01739H
[39] CHÁVEZ J L, LYON W, KELLEY-LOUGHNANE N, et al. Theophylline detection using an aptamer and DNA-gold nanoparticle conjugates[J]. Biosens Bioelectron,2010,26(1):23-28. doi:  10.1016/j.bios.2010.04.049
[40] WANG G Q, WANG Y Q, CHEN L X, et al. Nanomaterial-assisted aptamers for optical sensing[J]. Biosens Bioelectron,2010,25(8):1859-1868. doi:  10.1016/j.bios.2009.11.012
[41] LUO L H, ZHANG F, CHEN C Y, et al. Molecular imprinting resonance light scattering nanoprobes based on pH-responsive metal-organic framework for determination of hepatitis A virus[J]. Mikrochim Acta,2020,187(2):140. doi:  10.1007/s00604-020-4122-1
[42] SAYLAN Y, YILMAZ F, ÖZGÜR E, et al. Molecular imprinting of macromolecules for sensor applications[J]. Sensors (Basel),2017,17(4):E898. doi:  10.3390/s17040898
[43] YıLMAZ E, GARIPCAN B, PATRA H K, et al. Molecular imprinting applications in forensic science[J]. Sensors (Basel),2017,17(4):E691. doi:  10.3390/s17040691
[44] CHEN S N, DONG L J, YAN M, et al. Rapid and sensitive biomarker detection using molecular imprinting polymer hydrogel and surface-enhanced Raman scattering[J]. R Soc Open Sci,2018,5(1):171488. doi:  10.1098/rsos.171488
[45] GAO F, GRANT E, LU X N. Determination of histamine in canned tuna by molecularly imprinted polymers-surface enhanced Raman spectroscopy[J]. Anal Chim Acta,2015,901:68-75. doi:  10.1016/j.aca.2015.10.025
[46] KAMRA T, XU C G, MONTELIUS L, et al. Photoconjugation of molecularly imprinted polymer nanoparticles for surface-enhanced Raman detection of propranolol[J]. ACS Appl Mater Interfaces,2015,7(49):27479-27485. doi:  10.1021/acsami.5b09500
[47] BOYD-MOSS M, BARATCHI S, DI VENERE M, et al. Self-contained microfluidic systems: a review[J]. Lab Chip,2016,16(17):3177-3192. doi:  10.1039/C6LC00712K
[48] CHO Y, LEE S A, CHEW Y L, et al. Multimodal stimulation in a microfluidic device facilitates studies of interneurons in sensory integration in C. elegans[J]. Small,2020,16(10):e1905852. doi:  10.1002/smll.201905852
[49] HIDI I J, JAHN M, WEBER K, et al. Droplet based microfluidics: spectroscopic characterization of levofloxacin and its SERS detection[J]. Phys Chem Chem Phys,2015,17(33):21236-21242. doi:  10.1039/C4CP04970E
[50] WU L, WANG Z Y, ZONG S F, et al. Rapid and reproducible analysis of thiocyanate in real human serum and saliva using a droplet SERS-microfluidic chip[J]. Biosens Bioelectron,2014,62:13-18. doi:  10.1016/j.bios.2014.06.026
[51] NIE B, MASYUKO R N, BOHN P W. Correlation of surface-enhanced Raman spectroscopy and laser desorption-ionization mass spectrometry acquired from silver nanoparticle substrates[J]. Analyst,2012,137(6):1421-1427. doi:  10.1039/c2an15790j
[52] CYRIAC J, LI G T, COOKS R G. Vibrational spectroscopy and mass spectrometry for characterization of soft landed polyatomic molecules[J]. Anal Chem,2011,83(13):5114-5121. doi:  10.1021/ac200118f
[53] LUDWIG M, HIMMEL D, HILLEBRECHT H. GIAO versus GIPAW: comparison of methods to calculate 11B NMR shifts of icosahedral Closo-heteroboranes toward boron-rich borides[J]. J Phys Chem A,2020,124(11):2173-2185. doi:  10.1021/acs.jpca.9b06582
[54] FANG C, XIE Y J, JOHNSTON M R, et al. SERS and NMR studies of typical aggregation-induced emission molecules[J]. J Phys Chem A,2015,119(29):8049-8054. doi:  10.1021/acs.jpca.5b05478
[55] MUHAMADALI H, SUBAIHI A, MOHAMMADTAHERI M, et al. Rapid, accurate, and comparative differentiation of clinically and industrially relevant microorganisms via multiple vibrational spectroscopic fingerprinting[J]. Analyst,2016,141(17):5127-5136. doi:  10.1039/C6AN00883F
[56] XIE Y F, LI P, ZHANG J, et al. Comparative studies by IR, Raman, and surface-enhanced Raman spectroscopy of azodicarbonamide, biurea and semicarbazide hydrochloride[J]. Spectrochim Acta A Mol Biomol Spectrosc,2013,114:80-84. doi:  10.1016/j.saa.2013.05.055
[57] SHI Y, CAI M J, ZHOU L L, et al. Measurement of mechanical properties of naked cell membranes using atomic force microscope puncture test[J]. Talanta,2020,210:120637. doi:  10.1016/j.talanta.2019.120637
[58] BONDŽIĆ A M, LESKOVAC A R, PETROVIĆ S Ž, et al. Conjugates of gold nanoparticles and antitumor gold(III) complexes as a tool for their AFM and SERS detection in biological tissue[J]. Int J Mol Sci,2019,20(24):E6306. doi:  10.3390/ijms20246306