Extraction and preconcentration of organophosphorus pesticides in water by using a polymethacrylate-based sorbent modified with magnetic nanoparticles

dc.contributor.affiliationDepartamento de Química
dc.contributor.affiliationEscuela Politécnica Superior de Gandia
dc.contributor.affiliationInstituto de Investigación para la Gestión Integrada de Zonas Costeras
dc.contributor.authorMeseguer-Lloret, S.
dc.contributor.authorTorres-Cartas, Sagrario
dc.contributor.authorCatalá-Icardo, Mónica
dc.contributor.authorSimó-Alfonso, Ernesto F.es_ES
dc.contributor.authorHerrero-Martínez, José Manueles_ES
dc.contributor.funderGeneralitat Valencianaes_ES
dc.contributor.funderMinisterio de Economía y Competitividades_ES
dc.date.accessioned2018-03-25T04:17:01Z
dc.date.available2018-03-25T04:17:01Z
dc.date.embargoEndDate2018-05-01es_ES
dc.date.issued2017es_ES
dc.description.abstract[EN] A polymethacrylate-based sorbent modified with magnetic nanoparticles (MNPs) has been synthesized and used as sorbent for solid-phase extraction (SPE) and magnetic solid-phase extraction (MSPE) of three organophosphorus pesticides (phosmet, pirimiphos-methyl, and chlorpyrifos) in water samples followed by high-performance liquid chromatography diode array detection. The sorbent was prepared from a glycidyl methacrylate-based polymer, modified with a silanizing agent, followed by immobilization of MNPs on the surface of the material. The sorbent was characterized by scanning electron microscopy and Fourier transform infrared spectroscopy. Comparative studies of this support were done both in conventional SPE cartridge and MSPE approach. Several extraction parameters (loading pH, elution solvent, eluting volume, and loading flow rate) were investigated in detail. Under optimal conditions, the proposed sorbent gave an excellent enrichment efficiency of analytes and detection limits between 0.01 and 0.25 μg L−1. The recoveries of organophosphorus pesticides in spiked water samples were in the range of 71 98%, and the developed sorbent showed a high reusability (up to 50 uses without losses in recovery). The proposed method was satisfactorily applied to the analysis of these pesticides in water samples from different sources.en_EN
dc.description.accrualMethodSes_ES
dc.description.bibliographicCitationMeseguer-Lloret, S.; Torres-Cartas, S.; Catalá-Icardo, M.; Simó-Alfonso, EF.; Herrero-Martínez, JM. (2017). Extraction and preconcentration of organophosphorus pesticides in water by using a polymethacrylate-based sorbent modified with magnetic nanoparticles. Analytical and Bioanalytical Chemistry. 409(14):3561-3571. https://doi.org/10.1007/s00216-017-0294-xes_ES
dc.description.issue14es_ES
dc.description.referencesCouncil Directive 98/83/EC of 3 November 1998 on the quality of water intended for human consumptiones_ES
dc.description.referencesBotitsi HV, Garbis SD, Economou A, Tsipi DF. Current mass spectrometry strategies for the analysis of pesticides and their metabolites in food and water matrices. Mass Spectrom Rev. 2011;30:907–39.es_ES
dc.description.referencesKuster M, López de Alda M, Barceló D. Liquid chromatography tandem mass spectrometry analysis and regulatory issues for polar pesticides in natural and treated waters. J Chromatogr A. 2009;1216:520–9.es_ES
dc.description.referencesCatalá-Icardo M, Meseguer-Lloret S, Torres-Cartas S. Photoinduced chemiluminescence determination of carbamate pesticides. Photochem Photobiol Sci. 2016;15:626–34.es_ES
dc.description.referencesHuertas-Pérez JF, García-Campaña AM. Determination of N-methylcarbamate pesticides in water and vegetable samples by HPLC with post-column chemiluminescence detection using the luminol reaction. Anal Chim Acta. 2008;630(2):194–204.es_ES
dc.description.referencesSamadi S, Sereshti H, Assadi Y. Ultra-preconcentration and determination of thirteen organophosphorus pesticides in water sample using solid-phase extraction followed by dispersive liquid-liquid microextraction and gas chromatography with flame photometric detection. J Chromatogr A. 2012;1219:61–5.es_ES
dc.description.referencesHe L, Luo X, Xie H, Wang C, Jiang X, Lu K. Ionic liquid-based dispersive liquid–liquid microextraction followed high-performance liquid chromatography for the determination of organophosphorus pesticides in water sample. Anal Chim Acta. 2009;655:52–9.es_ES
dc.description.referencesWu C, Liu N, Wu Q, Wang C, Wang Z. Application of ultrasound-assisted surfactant-enhanced emulsification microextraction for the determination of some organophosphorus pesticides in water samples. Anal Chim Acta. 2010;679:56–62.es_ES
dc.description.referencesPeng G, Lu Y, He Q, Mmereki D, Zhou G, Chen J, et al. Determination of 3,5,6-trichloro-2-pyridinol, phoxim and chlorpyrifos-methyl in water samples using a new pretreatment method coupled with high-performance liquid chromatography. J Sep Sci. 2016;38:4204–10.es_ES
dc.description.referencesBáez ME, Rodríguez M, Lastra O, Contreras P. Solid phase extraction of organophosphorus, triazine, and triazole-derived pesticides from water samples. A critical study. J High Resolut Chrom. 1997;20:591–6.es_ES
dc.description.referencesRocha AA, Monteiro SH, Andrade GCRM, Vilca FZ, Tornisielo CL. Monitoring of pesticides residues in surface and subsurface waters, sediments and fish in center-pivot irrigation areas. J Braz Chem Soc. 2015;25(11):2269–78.es_ES
dc.description.referencesHadjmohammadi MR, Peyrovi M, Biparva P. Comparison of C18 silica and multi-walled carbon nanotubes as the adsorbents for the solid-phase extraction of Chlorpyrifos and Phosalone in water samples using HPLC. J Sep Sci. 2010;33:1044–51.es_ES
dc.description.referencesPelit L, Dizdas TN. Preparation and application of a polythiophene solid-phase microextraction fiber for the determination of endocrine-disruptor pesticides in well waters. J Sep Sci. 2013;36:3234–41.es_ES
dc.description.referencesIbrahim WAW, Nodeh HR, Aboul-Enein HY, Sanagi MM. Magnetic solid phase extraction based on modified ferum oxides for enrichment, preconcentration and isolation of pesticides and selected pollutants. Crit Rev Anal Chem. 2015;45:270–87.es_ES
dc.description.referencesLi XS, Zhu GT, Luo YB, Yuan BF, Feng YQ. Synthesis and applications of functionalized magnetic materials in sample preparation. Trends Anal Chem. 2013;45:233–47.es_ES
dc.description.referencesMaddah B, Shamsi J. Extraction and preconcentration of trace amounts of diazinon and fenitrothion from environmental water by magnetite octadecylsilane nanoparticles. J Chromatogr A. 2012;1256:40–5.es_ES
dc.description.referencesXie J, Liu T, Song G, Hu Y, Deng C. Simultaneous analysis of organophosphorus pesticides in water by magnetic solid phase extraction coupled with GC-MS. Chromatographia. 2013;76:535–40.es_ES
dc.description.referencesHeidari H, Razmi H. Multiresponse optimization of magnetic solid phase extraction based on carbon coated Fe3O4 nanoparticles using desirability function approach for the determination of the organophosphorus pesticides in aquatic samples by HPLC-UV. Talanta. 2012;99:13–21.es_ES
dc.description.referencesYan S, Qi TT, Chen DW, Li Z, Li XJ, Pan SY. Magnetic solid-phase extraction based on magnetite/reduced graphene oxide nanoparticles for determination of trace isocarbophos residues in different matrices. J Chromatogr A. 2014;1347:30–8.es_ES
dc.description.referencesTavakoli M, Hajimahmoodi M, Shemirani F. Trace level monitoring of pesticides in water samples using fatty acid coated magnetic nanoparticles prior to GC-MS. Anal Methods. 2014;6:2988–97.es_ES
dc.description.referencesTang Q, Wang X, Yu F, Qiao X, Xu Z. Simultaneous determination of ten organophosphorus pesticide residues in fruits by gas chromatography coupled with magnetic separation. J Sep Sci. 2014;27:820–7.es_ES
dc.description.referencesShen H, Zhu Y, Wen X, Zhuang Y. Preparation of Fe3O4-C18 nano-magnetic composite materials and their cleanup properties for organophosphorous pesticides. Anal Bioanal Chem. 2007;387:2227–37.es_ES
dc.description.referencesBagheri H, Zandi O, Aghakhani A. Magnetic nanoparticle-based micro-solid phase extraction and GC–MS determination of oxadiargyl in aqueous samples. Chromatographia. 2011;74:483–8.es_ES
dc.description.referencesMoravcova D, Rantamaki AH, Dusa F, Wiedmer SK. Monoliths in capillary electrochromatography and capillary liquid chromatography in conjunction with mass spectrometry. Electrophoresis. 2016;37(7–8):880–912.es_ES
dc.description.referencesNema T, Chan ECY, Ho PC. Applications of monolithic materials for sample preparation. J Pharm Biomed Anal. 2014;87:130–41.es_ES
dc.description.referencesVergara-Barberán M, Lerma-García MJ, Simó-Alfonso EF, Herrero-Martínez JM. Solid-phase extraction based on ground methacrylate monolith modified with gold nanoparticles for isolation of proteins. Anal Chim Acta. 2016;917:37–43.es_ES
dc.description.referencesVukoje ID, Dzunuzovic ES, Vodnik VV, Dimitrijevic S, Ahrenkiel SP, Nedeljkovic JM. Synthesis, characterization, and antimicrobial activity of poly(GMA-co-EGDMA) polymer decorated with silver nanoparticles. J Mater Sci. 2014;49:6838–44.es_ES
dc.description.referencesKrenkova J, Foret F. Iron oxide nanoparticle coating of organic polymer-based monolithic columns for phosphopeptide enrichment. J Sep Sci. 2011;34(16–17):2106–12.es_ES
dc.description.referencesDaou TJ, Begin-Colin S, Grenèche JM, Thomas F, Derory A, Bernhardt P, et al. Phosphate adsorption properties of magnetite-based nanoparticles. Chem Mater. 2007;19:4494–505.es_ES
dc.description.referencesMezenner NY, Bensmaili A. Kinetics and thermodynamic study of phosphate adsorption on iron hydroxide-eggshell waste. Chem Eng J. 2009;147:87–96.es_ES
dc.description.referencesYang C, Wang G, Lu Z, Sun J, Zhuang J, Yang W. Effect of ultrasonic treatment on dispersibility of Fe3O4 nanoparticles and synthesis of multi-core Fe3O4/SiO2 core/shell nanoparticles. J Mater Chem. 2005;15:4252–7.es_ES
dc.description.referencesCarrasco-Correa EJ, Ramis-Ramos G, Herrero-Martínez JM. Methacrylate monolithic columns functionalized with epinephrine for capillary electrochromatography applications. J Chromatogr A. 2013;1298:61–7.es_ES
dc.description.referencesWaldron RD. Infrared spectra of ferrites. Phys Rev. 1955;99:1727–35.es_ES
dc.description.referencesYamaura M, Camilo RL, Sampaio LC, Macedo MA, Nakamura M, Toma HE. Preparation and characterization of (3-aminopropyl)triethoxysilane-coated magnetite nanoparticles. J Magn Magn Mat. 2004;279:210–7.es_ES
dc.description.referencesJiang L, Sun W, Kim J. Preparation and characterization of ω-functionalized polystyrene–magnetite nanocomposites. Mater Chem Phys. 2007;101:291–6.es_ES
dc.description.referencesDallas P, Georgakilas V, Niarchos D, Komninou P, Kehagias T, Petridis D. Synthesis, characterization and thermal properties of polymer/magnetite nanocomposites. Nanotechnology. 2006;17:2046–53.es_ES
dc.description.referencesZhao XL, Shi YL, Wang T, Cai YQ, Jiang GB. Preparation of silica-magnetite nanoparticle mixed hemimicelle sorbents for extraction of several typical phenolic compounds from environmental water samples. J Chromatogr A. 2008;1188:140–7.es_ES
dc.description.referencesSitko R, Gliwinska B, Zawisza B, Feist B. Ultrasound-assisted solid-phase extraction using multiwalled carbon nanotubes for determination of cadmium by flame atomic absorption spectrometry. J Anal At Spectrom. 2013;28:405–10.es_ES
dc.description.referencesSuslick KS, Price GJ. Application of ultrasound to materials chemistry. Annu Rev Mater Sci. 1999;29:295–326.es_ES
dc.description.referencesBoqué R, Heyden YV. The limit of detection. LCGC Eur. 2009;22(2):1–4.es_ES
dc.description.referencesCatalá-Icardo M, Lahuerta-Zamora L, Torres-Cartas S, Meseguer-Lloret S. Determination of organothiophosphorus pesticides in water by liquid chromatography and post-column chemiluminescence with cerium(IV). J Chromatogr A. 2014;1341:31–40.es_ES
dc.description.sponsorshipThis work was supported by projects CTQ2014-52765-R (MINECO of Spain and FEDER) and PROMETEO/2016/145 (Conselleria de Educacion, Investigacion, Cultura y Deporte of Generalitat Valenciana, Spain).en_EN
dc.description.upvformatpfin3571es_ES
dc.description.upvformatpinicio3561es_ES
dc.description.volume409es_ES
dc.identifier.doi10.1007/s00216-017-0294-xes_ES
dc.identifier.issn1618-2642es_ES
dc.identifier.urihttps://riunet.upv.es/handle/10251/99711
dc.languageIngléses_ES
dc.publisherSpringer-Verlages_ES
dc.relation.ispartofAnalytical and Bioanalytical Chemistryes_ES
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dc.relation.projectIDinfo:eu-repo/grantAgreement/MINECO//CTQ2014-52765-R/ES/DESARROLLO DE FASES ESTACIONARIAS MONOLITICAS HIBRIDAS POLIMERO-NANOPARTICULAS Y SUS APLICACIONES EN SEPARACION/es_ES
dc.relation.projectIDinfo:eu-repo/grantAgreement/GVA//PROMETEO%2F2016%2F145/ES/Sistemas de separación basados en nuevos polímeros porosos y composites polímero-nanopartículas con aplicaciones industriales y medioambientales/es_ES
dc.relation.publisherversionhttps://doi.org/10.1007/s00216-017-0294-xes_ES
dc.relation.references10.1016/j.chroma.2008.08.031es_ES
dc.relation.references10.1039/C6PP00056Hes_ES
dc.relation.references10.1016/j.aca.2008.09.047es_ES
dc.relation.references10.1016/j.chroma.2011.11.019es_ES
dc.relation.references10.1016/j.aca.2009.09.044es_ES
dc.relation.references10.1016/j.aca.2010.09.009es_ES
dc.relation.references10.1002/jssc.201500736es_ES
dc.relation.references10.1002/jhrc.1240201105es_ES
dc.relation.references10.1002/jssc.201000326es_ES
dc.relation.references10.1080/10408347.2014.938148es_ES
dc.relation.references10.1016/j.trac.2012.10.015es_ES
dc.relation.references10.1016/j.chroma.2012.07.085es_ES
dc.relation.references10.1007/s10337-013-2408-8es_ES
dc.relation.references10.1016/j.talanta.2012.04.023es_ES
dc.relation.references10.1016/j.chroma.2014.04.073es_ES
dc.relation.references10.1039/c3ay41915kes_ES
dc.relation.references10.1002/jssc.201301161es_ES
dc.relation.references10.1007/s00216-006-1082-1es_ES
dc.relation.references10.1007/s10337-011-2083-6es_ES
dc.relation.references10.1002/elps.201500520es_ES
dc.relation.references10.1016/j.jpba.2013.05.036es_ES
dc.relation.references10.1016/j.aca.2016.02.043es_ES
dc.relation.references10.1007/s10853-014-8386-xes_ES
dc.relation.references10.1021/cm071046ves_ES
dc.relation.references10.1016/j.cej.2008.06.024es_ES
dc.relation.references10.1039/b505018aes_ES
dc.relation.references10.1016/j.chroma.2013.05.013es_ES
dc.relation.references10.1103/PhysRev.99.1727es_ES
dc.relation.references10.1016/j.jmmm.2004.01.094es_ES
dc.relation.references10.1016/j.matchemphys.2006.05.007es_ES
dc.relation.references10.1088/0957-4484/17/8/043es_ES
dc.relation.references10.1016/j.chroma.2008.02.069es_ES
dc.relation.references10.1039/c2ja30328kes_ES
dc.relation.references10.1146/annurev.matsci.29.1.295es_ES
dc.relation.references10.1016/j.chroma.2014.03.024es_ES
dc.rightsReserva de todos los derechoses_ES
dc.rights.accessRightsAbiertoes_ES
dc.subjectOrganophosphorus pesticideses_ES
dc.subjectMagnetic polymer-based materiales_ES
dc.subjectSolid-phase extractiones_ES
dc.subjectWater analysises_ES
dc.subject.classificationQUIMICA ANALITICAes_ES
dc.titleExtraction and preconcentration of organophosphorus pesticides in water by using a polymethacrylate-based sorbent modified with magnetic nanoparticleses_ES
dc.typeArtículoes_ES
dc.type.versioninfo:eu-repo/semantics/publishedVersiones_ES
dspace.entity.typePublication
person.identifier338262
person.identifier201208
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person.identifier.orcid0000-0002-5139-7891
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