[1] CHEN X F, CHANYU Y, LI Z.Microarray-based chemical sensors and biosensors:Fundamentals and food safety applications[J].TrAC Trends in Analytical Chemistry, 2023, 158:116785.
[2] LIN Y D, MA J, WANG Q J, et al.Applications of machine learning techniques for enhancing nondestructive food quality and safety detection[J].Critical Reviews in Food Science and Nutrition, 2023, 63(12):1649-1669.
[3] HUANG H Z, LI N, CHEN Y, et al.Synthesis of multiwalled carbon nanotubes/metal-organic framework composite for the determination of neonicotinoid pesticides in medicine and food homology products[J].Food Chemistry, 2024, 434:137354.
[4] LUO A Q, CAI Y H, LIU M, et al.Novel co MOF with ionic liquid comprised portable molecularly imprinted polymer-based electrochemical sensor for the point-of-care detection of a breast cancer biomarker[J].Journal of the Electrochemical Society, 2022, 169(11):117504.
[5] AHMADIAN M, DERAKHSHANKHAH H, JAYMAND M.Recent advances in adsorption of environmental pollutants using metal-organic frameworks-based hydrogels[J].International Journal of Biological Macromolecules, 2023, 231:123333.
[6] WEI Q, WU Y H, LIU F F, et al.Advances in antitumor nanomedicine based on functional metal-organic frameworks beyond drug carriers[J].Journal of Materials Chemistry.B, 2022, 10(5):676-699.
[7] LEE G, YOO D K, AHMED I, et al.Metal-organic frameworks composed of nitro groups:Preparation and applications in adsorption and catalysis[J].Chemical Engineering Journal, 2023, 451:138538.
[8] CHEN Z S, LI Y, CAI Y W, et al.Application of covalent organic frameworks and metal-organic frameworks nanomaterials in organic/inorganic pollutants removal from solutions through sorption-catalysis strategies[J].Carbon Research, 2023, 2(1):8.
[9] WANG S L, ZHANG L, ZENG J, et al.Multi-templates molecularly imprinted polymers for simultaneous recognition of multiple targets:From academy to application[J].TrAC Trends in Analytical Chemistry, 2023, 166:117173.
[10] LIU Y, DANG X P, CHEN H X.A molecularly imprinted polymer monolithic column with dual template and bifunctional monomers for selective extraction and simultaneous determination of eight phenolics from polycarbonate cups[J].Analytica Chimica Acta, 2023, 1273:341493.
[11] AYERDURAI V, CIEPLAK M, KUTNER W.Molecularly imprinted polymer-based electrochemical sensors for food contaminants determination[J].TrAC Trends in Analytical Chemistry, 2023, 158:116830.
[12] TAJANI A S, SOHEILI V, MOOSAVI F, et al.Ultra selective and high-capacity dummy template molecular imprinted polymer to control quorum sensing and biofilm formation of Pseudomonas aeruginosa[J].Analytica Chimica Acta, 2022, 1199:339574.
[13] KARDANI F, MIRZAJANI R, TAMSILIAN Y, et al.A novel immunoaffinity column based metal-organic framework deep eutectic solvents @ molecularly imprinted polymers as a sorbent for the solid phase extraction of aflatoxins AFB1, AFB2, AFG1, and AFG2 from cereals samples[J].Microchemical Journal, 2023, 187:108366.
[14] 麻敏瑞, 祝新月, 刘晓燕, 等.磁性金属有机框架表面分子印迹的制备及富集蔬菜样品中2, 4-二氯苯氧乙酸的应用[J].分析测试技术与仪器, 2021, 27(4):260-272.
MA M R, ZHU X Y, LIU X Y, et al.Preparation of molecular imprinting on surface of magnetic metal-organic framework and application of enrichment of 2, 4-dichlorophenoxyacetic acid in vegetables samples[J].Analysis and Testing Technology and Instruments, 2021, 27(4):260-272.
[15] PAN L L, DING Y Y, NI X T, et al.Modeling rapid and selective capture of nNOS-PSD-95 uncouplers from Sanhuang Xiexin decoction by novel molecularly imprinted polymers based on metal-organic frameworks[J].RSC Advances, 2020, 10(13):7671-7681.
[16] GUI R J, GUO H J, JIN H.Preparation and applications of electrochemical chemosensors based on carbon-nanomaterial-modified molecularly imprinted polymers[J].Nanoscale Advances, 2019, 1(9):3325-3363.
[17] BHOGAL S, KAUR K, MOHIUDDIN I, et al.Hollow porous molecularly imprinted polymers as emerging adsorbents[J].Environmental Pollution, 2021, 288:117775.
[18] ZHANG Z P, LIU Y, HUANG P C, et al.Polydopamine molecularly imprinted polymer coated on a biomimetic iron-based metal-organic framework for highly selective fluorescence detection of metronidazole[J].Talanta, 2021, 232:122411.
[19] FU K X, ZHANG R L, HE J C, et al.Sensitive detection of ketamine with an electrochemical sensor based on UV-induced polymerized molecularly imprinted membranes at graphene and MOFs modified electrode[J].Biosensors and Bioelectronics, 2019, 143:111636.
[20] CHI H, LIU G Q.Carbon nanomaterial-based molecularly imprinted polymer sensors for detection of hazardous substances in food:Recent progress and future trends[J].Food Chemistry, 2023,420:131600.
[21] RAHIMPOOR R, FIROOZICHAHAK A, ALIZADEH S, et al.Application of a needle trap device packed with a MIP@MOF nano-composite for efficient sampling and determination of airborne diazinon pesticide[J].RSC Advances, 2022, 12(25):16267-16276.
[22] HUA Y B, KUKKAR D, BROWN R J C, et al.Recent advances in the synthesis of and sensing applications for metal-organic framework-molecularly imprinted polymer (MOF-MIP) composites[J].Critical Reviews in Environmental Science and Technology, 2023, 53(2):258-289.
[23] LAHCEN A A, SURYA S G, BEDUK T, et al.Metal-organic frameworks meet molecularly imprinted polymers:Insights and prospects for sensor applications[J].ACS Applied Materials & Interfaces, 2022, 14(44):49399-49424.
[24] GUO W J, JING Z W, DU Q Z.Research progress of metal-organic frameworks-molecularly imprinted polymers for specific recognition[J].Microchemical Journal, 2023, 191:108908.
[25] ÇORMAN M E, OZCELIKAY G, CETINKAYA A, et al.Metal-organic frameworks as an alternative smart sensing platform for designing molecularly imprinted electrochemical sensors[J].TrAC Trends in Analytical Chemistry, 2022, 150:116573.
[26] BEIGMORADI F, ROHANI MOGHADAM M, BAZMANDEGAN-SHAMILI A, et al.Electrochemical sensor based on molecularly imprinted polymer coating on metal-organic frameworks for the selective and sensitive determination of carbendazim[J].Microchemical Journal, 2022, 179:107633.
[27] AN J X, LI L, DING Y P, et al.A novel molecularly imprinted electrochemical sensor based on Prussian blue analogue generated by iron metal organic frameworks for highly sensitive detection of melamine[J].Electrochimica Acta, 2019, 326:134946.
[28] DUAN D, YE J P, CAI X, et al.Cobalt(II)-ion-exchanged Zn-bio-MOF-1 derived CoS/ZnS composites modified electrochemical sensor for chloroneb detection by differential pulse voltammetry[J].Mikrochimica Acta, 2021, 188(4):111.
[29] XU L P, LI J B, ZHANG J J, et al.A disposable molecularly imprinted electrochemical sensor for the ultra-trace detection of the organophosphorus insecticide phosalone employing monodisperse Pt-doped UiO-66 for signal amplification[J].Analyst, 2020, 145(9):3245-3256.
[30] MEHMANDOUST M, ERK N, NASER M, et al.Molecularly imprinted polymer film loaded on the metal-organic framework with improved performance using stabilized gold-doped graphite carbon nitride nanosheets for the single-step detection of Fenamiphos[J].Food Chemistry, 2023, 404:134627.
[31] Afshar E A, Taher M A, Karimi F, et al.Ultrasensitive and highly selective “turn-on” fluorescent sensor for the detection and measurement of melatonin in juice samples[J].Chemosphere 2022, 295(4):1338-1349.
[32] AMIRIPOUR F, GHASEMI S, AZIZI S N.Förster resonance energy transfer-based molecularly imprinted polymer/amine-functionalized metal-organic framework nanocomposite for trace level detection of 4-nitrophenol[J].Analytica Chimica Acta, 2022, 1202:339638.
[33] DU Q Z, WU P, HU F, et al.Novel molecularly imprinted polymers on metal-organic frameworks as sensors for the highly selective detection of Zearalenone in wheat[J].New Journal of Chemistry, 2019, 43(18):7044-7050.
[34] BAGHER N, KHATAEE A, HABIBI B, et al.Mimetic Ag nanoparticle/Zn-based MOF nanocomposite (AgNPs@ZnMOF) capped with molecularly imprinted polymer for the selective detection of patulin[J].Talanta:The International Journal of Pure and Applied Analytical Chemistry, 2019,179(3):710-718.
[35] ZHANG J N, LIU Y, CUI X Y, et al.A smartphone-integrated molecularly imprinted fluorescence sensor for visual detection of chlortetracycline based on N, P-codoped carbon dots decorated iron-based metal-organic frameworks[J].Journal of Agricultural and Food Chemistry, 2023, 71(43):16303-16309.
[36] AMIRIPOUR F, GHASEMI S, AZIZI S N.Design of turn-on luminescent sensor based on nanostructured molecularly imprinted polymer-coated zirconium metal-organic framework for selective detection of chloramphenicol residues in milk and honey[J].Food Chemistry, 2021, 347:129034.
[37] WU X D, TANG S S, ZHAO P F, et al.One-pot synthesis of ternary-emission molecularly imprinted fluorescence sensor based on metal-organic framework for visual detection of chloramphenicol[J].Food Chemistry, 2023, 402:134256.
[38] GUO Y, YUAN G Q, HU X L, et al.A high-luminescence biomimetic nanosensor based on N, S-GQDs-embedded zinc-based metal-organic Framework@Molecularly imprinted polymer for sensitive detection of octopamine in fermented foods[J].Foods, 2022, 11(9):1348.
[39] FU D L, CHEN T, LIU H L, et al.An ultraviolet self-initiated polymerized platform for specific recognition and elimination of caffeic acid based on the molecular imprinting technology[J].Sensors and Actuators B:Chemical, 2022, 361:131659.
[40] ESKANDARI H, AMIRZEHNI M, HASSANZADEH J, et al.Mesoporous MIP-capped luminescent MOF as specific and sensitive analytical probe:Application for chlorpyrifos[J].Mikrochimica Acta, 2020, 187(12):673.
[41] WANG X H, LIU C, CAO Y C, et al.A turn-off fluorescent biomimetic sensor based on a molecularly imprinted polymer-coated amino-functionalized zirconium (IV) metal-organic framework for the ultrasensitive and selective detection of trace oxytetracycline in milk[J].Foods, 2023, 12(11):2255.
[42] MURUGAN K, JOTHI V K, RAJARAM A, et al.Novel metal-free fluorescent sensor based on molecularly imprinted polymer N-CDs@MIP for highly selective detection of TNP[J].ACS Omega, 2021, 7(1):1368-1379.
[43] XU L H, PAN M F, FANG G Z, et al.Carbon dots embedded metal-organic framework@molecularly imprinted nanoparticles for highly sensitive and selective detection of quercetin[J].Sensors and Actuators B:Chemical, 2019, 286:321-327.
[44] ZHANG J N, LI Y, TENG L H, et al.A molecularly imprinted fluorescence sensor for sensitive detection of tetracycline using nitrogen-doped carbon dots-embedded zinc-based metal-organic frameworks as signal-amplifying tags[J].Analytica Chimica Acta, 2023, 1251:341032.
[45] FAN M X, GAN T T, YIN G F, et al.Molecularly imprinted polymer coated Mn-doped ZnS quantum dots embedded in a metal-organic framework as a probe for selective room temperature phosphorescence detection of chlorpyrifos[J].RSC Advances, 2021, 11(45):27845-27854.
[46] LIU H L, NI T H, MU L, et al.Sensitive detection of pyrraline with a molecularly imprinted sensor based on metal-organic frameworks and quantum dots[J].Sensors and Actuators B:Chemical, 2018, 256:1038-1044.
[47] 赵睿,VANGU KAMBU EMMANUEL,王凤寰,等.新型多孔材料在黄酮类样品分离检测前处理中的研究进展[J].生物加工过程,2024,22(4):367-377.
ZHAO R, EMMANUEL V, WANG F H, et al.Progress of novel porous materials in the pretreatment of flavonoids for separation and detection[J].Chinese Journal of Bioprocess Engineering, 2023, 22(4):367-377.
[48] HATAMLUYI B, SADEGHIAN R, MALEK F, et al.Improved solid phase extraction for selective and efficient quantification of sunset yellow in different food samples using a novel molecularly imprinted polymer reinforced by Fe3O4@UiO-66-NH2[J].Food Chemistry, 2021, 357:129782.
[49] LIU T Q, HU Y X, FENG Y, et al.Preparation of metal-organic framework @molecularly imprinted polymers for extracting strobilurin fungicides from agricultural products[J].Journal of Chromatography B, 2022, 1209:123427.
[50] LIU Y Y, ZHANG H Y, XIE D C, et al.Optimized synthesis of molecularly imprinted polymers coated magnetic UIO-66 MOFs for simultaneous specific removal and determination of multi types of macrolide antibiotics in water[J].Journal of Environmental Chemical Engineering, 2022, 10(4):108094.
[51] WANG Y L, QIU X Z, WANG F Y, et al.Single-crystal ordered macroporous metal-organic framework as support for molecularly imprinted polymers and their integration in membrane formant for the specific recognition of Zearalenone[J].Journal of Separation Science, 2021, 44(22):4190-4199.
[52] LU L Y, WEN Z, LIN J, et al.Molecularly imprinted polymers based on magnetic metal-organic frameworks for surface-assisted laser desorption/ionization time-of-flight mass spectrometry analysis and simultaneous luteolin enrichment[J].Journal of Chromatography A, 2022, 1678:463377.
[53] LI Y, LI B Z, QI Y, et al.Synthesis of metal-organic framework @molecularly imprinted polymer adsorbents for solid phase extraction of organophosphorus pesticides from agricultural products[J].Journal of Chromatography B, 2022, 1188:123081.
[54] 于亭亭, 苏立强, 兰志满, 等.以MIL-101为基底的核壳型氯霉素分子印迹聚合物的制备及应用[J].分析化学, 2020, 48(12):1694-1700.
YU T T, SU L Q, LAN Z M, et al.Preparation and application of core-shell chloramphenicol molecularly imprinted polymer based on MIL-101[J].Chinese Journal of Analytical Chemistry, 2020, 48(12):1694-1700.
[55] 龚梦婷, 宋俊杰, 田海希, 等.金属有机骨架-分子印迹复合材料的制备、表征及其对吗啉的吸附性能[J].功能材料, 2020, 51(5):5193-5201.
GONG M T, SONG J J, TIAN H X, et al.Preparation, characterization and adsorption property for a metal organic frames (MOFs)-molecularly imprinted polymer (MIPs) composite material[J].Journal of Functional Materials, 2020, 51(5):5193-5201.
[56] LIANG Y T, HE J, HUANG Z P, et al.An amino-functionalized zirconium-based metal-organic framework of type UiO-66-NH2 covered with a molecularly imprinted polymer as a sorbent for the extraction of aflatoxins AFB1, AFB2, AFG1 and AFG2 from grain[J].Mikrochimica Acta, 2019, 187(1):32.
[57] 朱旭冉, 刘媛, 韩正政, 等.分子印迹掺杂金属有机框架固相萃取-高效液相色谱-串联质谱法测定大米中10种磺酰脲类除草剂[J].食品工业科技, 2020, 41(2):213-219;226.
ZHU X R, LIU Y, HAN Z Z, et al.Determination of 10 sulfonylurea herbicides by high performance liquid chromatography-tandem mass spectrometric with molecularly imprinted polymers solid phase extraction doped metal organic frameworks[J].Science and Technology of Food Industry, 2020, 41(2):213-219;226.
[58] ZHANG X C, GAO J, CHU Q H, et al.Specific recognition and determination of trace phthalic acid esters by molecularly imprinted polymer based on metal organic framework[J].Analytica Chimica Acta, 2022, 1227:340292.
[59] ZHANG X, HE J, WANG H G, et al.Surface molecularly imprinted polymers based on NH2-MIL-53 for selective extraction ochratoxin A in real sample[J].Macromolecular Research, 2022, 30(10):719-730.
[60] ZHOU S, FU J L, ZHAO P F, et al.Hollow magnetic molecularly imprinted polymer based on metal-organic framework for capture of ciprofloxacin[J].Separation Science Plus, 2022, 5(8):337-348.
[61] ZHANG Q, WANG H Y, ZHANG Y J, et al.Preparation of magnetic metal-organic Frameworks@Molecularly imprinted nanoparticles for specific extraction and enrichment of bisphenol A in food[J].Foods, 2022, 11(10):1408.
[62] ALILOU S, AMIRZEHNI M, ESLAMI P A.A simple fluorometric method for rapid screening of aflatoxins after their extraction by magnetic MOF-808/graphene oxide composite and their discrimination by HPLC[J].Talanta, 2021, 235:122709.
[63] LIANG T, WANG S S, CHEN L G, et al.Metal organic framework-molecularly imprinted polymer as adsorbent in matrix solid phase dispersion for pyrethroids residue extraction from wheat[J].Food Analytical Methods, 2019, 12(1):217-228.
[64] WANG S S, ZHANG J F, LI C Y, et al.Analysis of tetracyclines from milk powder by molecularly imprinted solid-phase dispersion based on a metal-organic framework followed by ultra high performance liquid chromatography with tandem mass spectrometry[J].Journal of Separation Science, 2018, 41(12):2604-2612.
[65] KARDANI F, MIRZAJANI R, TAMSILIAN Y, et al.The residual determination of 39 antibiotics in meat and dairy products using solid-phase microextraction based on deep eutectic solvents@UMCM-1 metal-organic framework/molecularly imprinted polymers with HPLC-UV[J].Food Chemistry Advances, 2023, 2:100173.
[66] MIRZAJANI R, KARDANI F, RAMEZANI Z.A nanocomposite consisting of graphene oxide, zeolite imidazolate framework 8, and a molecularly imprinted polymer for (multiple) fiber solid phase microextraction of sterol and steroid hormones prior to their quantitation by HPLC[J].Mikrochimica Acta, 2019, 186(3):129.
[67] MIRZAJANI R, KARDANI F, RAMEZANI Z.Fabrication of UMCM-1 based monolithic and hollow fiber-Metal-organic framework deep eutectic solvents/molecularly imprinted polymers and their use in solid phase microextraction of phthalate esters in yogurt, water and edible oil by GC-FID[J].Food Chemistry, 2020, 314:126179.