Detection of parathion methyl using a surface plasmon resonance sensor combined with molecularly imprinted films
English
Detection of parathion methyl using a surface plasmon resonance sensor combined with molecularly imprinted films
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Key words:
- PM detection
- / Surface plasmon resonance
- / Molecularly imprinted films
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[1] C.P.Wei, H.Q. Zhou, J. Zhou, Ultrasensitively sensing acephate usingmolecular imprinting techniques on a surface plasmon resonance sensor, Talanta 83 (2011) 1422-1427.[1] C.P.Wei, H.Q. Zhou, J. Zhou, Ultrasensitively sensing acephate usingmolecular imprinting techniques on a surface plasmon resonance sensor, Talanta 83 (2011) 1422-1427.
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[2] C.M. Torres, Y. Picó, J. Mañes, Determination of pesticide residues in fruit and vegetables, J. Chromatogr. A 754 (1996) 301-331.[2] C.M. Torres, Y. Picó, J. Mañes, Determination of pesticide residues in fruit and vegetables, J. Chromatogr. A 754 (1996) 301-331.
-
[3] L. Pogačnik, M. Franko, Detection of organophosphate and carbamate pesticides in vegetable samples by a photothermal biosensor, Biosens. Bioelectron. 18 (2003) 1-9.[3] L. Pogačnik, M. Franko, Detection of organophosphate and carbamate pesticides in vegetable samples by a photothermal biosensor, Biosens. Bioelectron. 18 (2003) 1-9.
-
[4] A. Cappiello, G. Famiglini, P. Palma, F. Mangani, Trace level determination of organophosphorus pesticides in water with the new direct-electron ionization LC/MS interface, Anal. Chem. 74 (2002) 3547-3554.[4] A. Cappiello, G. Famiglini, P. Palma, F. Mangani, Trace level determination of organophosphorus pesticides in water with the new direct-electron ionization LC/MS interface, Anal. Chem. 74 (2002) 3547-3554.
-
[5] L. Chimuka, M. Van Pinxteren, J. Billing, E. Yilmaz, J.Å. Jönsson, Selective extraction of triazine herbicides based on a combination of membrane assisted solvent extraction and molecularly imprinted solid phase extraction, J. Chromatogr. A 1218 (2011) 647-653.[5] L. Chimuka, M. Van Pinxteren, J. Billing, E. Yilmaz, J.Å. Jönsson, Selective extraction of triazine herbicides based on a combination of membrane assisted solvent extraction and molecularly imprinted solid phase extraction, J. Chromatogr. A 1218 (2011) 647-653.
-
[6] D. Djozan, B. Ebrahimi, M. Mahkam, M.A. Farajzadeh, Evaluation of a new method for chemical coating of aluminum wire with molecularly imprinted polymer layer. Application for the fabrication of triazines selective solid-phase microextraction fiber, Anal. Chim. Acta 674 (2010) 40-48.[6] D. Djozan, B. Ebrahimi, M. Mahkam, M.A. Farajzadeh, Evaluation of a new method for chemical coating of aluminum wire with molecularly imprinted polymer layer. Application for the fabrication of triazines selective solid-phase microextraction fiber, Anal. Chim. Acta 674 (2010) 40-48.
-
[7] L. Pallaroni, C. Von Holst, Determination of zearalenone from wheat and corn by pressurized liquid extraction and liquid chromatography-electrospray mass spectrometry, J. Chromatogr. A 993 (2003) 39-45.[7] L. Pallaroni, C. Von Holst, Determination of zearalenone from wheat and corn by pressurized liquid extraction and liquid chromatography-electrospray mass spectrometry, J. Chromatogr. A 993 (2003) 39-45.
-
[8] A.A. Ciucu, C. Negulescu, R.P. Baldwin, Determination of pesticides using an amperometric biosensor based on ferophthalocyanine chemically modified carbon paste electrode and immobilized bienzymatic system, Biosens. Bioelectron. 18 (2003) 303-310.[8] A.A. Ciucu, C. Negulescu, R.P. Baldwin, Determination of pesticides using an amperometric biosensor based on ferophthalocyanine chemically modified carbon paste electrode and immobilized bienzymatic system, Biosens. Bioelectron. 18 (2003) 303-310.
-
[9] Y.D. Zhang, S.B. Muench, H. Schulze, et al., Disposable biosensor test for organophosphate and carbamate insecticides in milk, J. Agric. Food Chem. 53 (2005) 5110-5115.[9] Y.D. Zhang, S.B. Muench, H. Schulze, et al., Disposable biosensor test for organophosphate and carbamate insecticides in milk, J. Agric. Food Chem. 53 (2005) 5110-5115.
-
[10] Y.H. Qu, H. Min, Y.Y. Wei, et al., Au-TiO2/Chit modified sensor for electrochemical detection of trace organophosphates insecticides, Talanta 76 (2008) 758-762.[10] Y.H. Qu, H. Min, Y.Y. Wei, et al., Au-TiO2/Chit modified sensor for electrochemical detection of trace organophosphates insecticides, Talanta 76 (2008) 758-762.
-
[11] Q.Q. Wei, T.X. Wei, A novel method to prepare SPR sensor chips based on photografting molecularly imprinted polymer, Chin. Chem. Lett. 22 (2011) 721-724.[11] Q.Q. Wei, T.X. Wei, A novel method to prepare SPR sensor chips based on photografting molecularly imprinted polymer, Chin. Chem. Lett. 22 (2011) 721-724.
-
[12] Y. Wang, T.X. Wei, Surface plasmon resonance sensor chips for the recognition of bovine serum albumin via electropolymerized molecularly imprinted polymers, Chin. Chem. Lett. 24 (2013) 813-816.[12] Y. Wang, T.X. Wei, Surface plasmon resonance sensor chips for the recognition of bovine serum albumin via electropolymerized molecularly imprinted polymers, Chin. Chem. Lett. 24 (2013) 813-816.
-
[13] J. Homola, Surface plasmon resonance sensors for detection of chemical and biological species, Chem. Rev. 108 (2008) 462-493.[13] J. Homola, Surface plasmon resonance sensors for detection of chemical and biological species, Chem. Rev. 108 (2008) 462-493.
-
[14] M. Malmqvist, BIACORE: an affinity biosensor system for characterization of biomolecular interactions, Biochem. Soc. Trans. 27 (1999) 335-340.[14] M. Malmqvist, BIACORE: an affinity biosensor system for characterization of biomolecular interactions, Biochem. Soc. Trans. 27 (1999) 335-340.
-
[15] L.X. Zhang, J.Y. Liu, E.K. Wang, A new method for studying the interaction between chlorpromazine and phospholipid bilayer, Biochem. Biophys. Res. Commun. 373 (2008) 202-205.[15] L.X. Zhang, J.Y. Liu, E.K. Wang, A new method for studying the interaction between chlorpromazine and phospholipid bilayer, Biochem. Biophys. Res. Commun. 373 (2008) 202-205.
-
[16] L. Quan, D.G. Wei, X.L. Jiang, et al., Resurveying the Tris buffer solution: the specific interaction between tris(hydroxymethyl)aminomethane and lysozyme, Anal. Biochem. 378 (2008) 144-150.[16] L. Quan, D.G. Wei, X.L. Jiang, et al., Resurveying the Tris buffer solution: the specific interaction between tris(hydroxymethyl)aminomethane and lysozyme, Anal. Biochem. 378 (2008) 144-150.
-
[17] C.F. Mandenius, R.H. Wang, A. Aldén, et al., Monitoring of influenza virus hemagglutinin in process samples using weak affinity ligands and surface plasmon resonance, Anal. Chim. Acta 623 (2008) 66-75.[17] C.F. Mandenius, R.H. Wang, A. Aldén, et al., Monitoring of influenza virus hemagglutinin in process samples using weak affinity ligands and surface plasmon resonance, Anal. Chim. Acta 623 (2008) 66-75.
-
[18] G. Hayashi, M. Hagihara, K. Nakatani, Genotyping by allele-specific L-DNA-tagged PCR, J. Biotechnol. 135 (2008) 157-160.[18] G. Hayashi, M. Hagihara, K. Nakatani, Genotyping by allele-specific L-DNA-tagged PCR, J. Biotechnol. 135 (2008) 157-160.
-
[19] F. Bonini, S. Piletsky, A.P.F. Turner, A. Speghini, A. Bossi, Surface imprinted beads for the recognition of human serum albumin, Biosens. Bioelectron. 22 (2007) 2322-2328.[19] F. Bonini, S. Piletsky, A.P.F. Turner, A. Speghini, A. Bossi, Surface imprinted beads for the recognition of human serum albumin, Biosens. Bioelectron. 22 (2007) 2322-2328.
-
[20] C. Esen,M. Andac, N. Bereli, et al., Highly selective ion-imprinted particles for solid-phase extraction of Pb2+ ions, Mater. Sci. Eng. C: Mater. 29 (2009) 2464-2470.[20] C. Esen,M. Andac, N. Bereli, et al., Highly selective ion-imprinted particles for solid-phase extraction of Pb2+ ions, Mater. Sci. Eng. C: Mater. 29 (2009) 2464-2470.
-
[21] Y. Saylan, M.M. Sari, S. Özkara, L. Uzun, A. Denizli, Hydrophobic microbeads as an alternative pseudo-affinity adsorbent for recombinant human interferon-alpha via hydrophobic interactions, Mater. Sci. Eng. C: Mater. 32 (2012) 937-944.[21] Y. Saylan, M.M. Sari, S. Özkara, L. Uzun, A. Denizli, Hydrophobic microbeads as an alternative pseudo-affinity adsorbent for recombinant human interferon-alpha via hydrophobic interactions, Mater. Sci. Eng. C: Mater. 32 (2012) 937-944.
-
[22] S. Asliyuce, L. Uzun, R. Say, A. Denizli, Immunoglobulin G recognition with Fab fragments imprintedmonolithic cryogels: evaluation of the effects ofmetal-ion assisted-coordination of template molecule, React. Funct. Polym. 73 (2013) 813-820.[22] S. Asliyuce, L. Uzun, R. Say, A. Denizli, Immunoglobulin G recognition with Fab fragments imprintedmonolithic cryogels: evaluation of the effects ofmetal-ion assisted-coordination of template molecule, React. Funct. Polym. 73 (2013) 813-820.
-
[23] G. Ertürk, L. Uzun, M.A. Tümer, R. Say, A. Denizli, Fab fragments imprinted SPRbiosensor for real-time human immunoglobulin G detection, Biosens. Bioelectron. 22 (2007) 2322-2328.[23] G. Ertürk, L. Uzun, M.A. Tümer, R. Say, A. Denizli, Fab fragments imprinted SPRbiosensor for real-time human immunoglobulin G detection, Biosens. Bioelectron. 22 (2007) 2322-2328.
-
[24] H.X. Hao, H. Zhou, J. Chang, J. Zhu, T.X. Wei, Molecularly imprinted polymers for highly sensitive detection of morphine using surface plasmon resonance spectroscopy, Chin. Chem. Lett. 22 (2011) 477-480.[24] H.X. Hao, H. Zhou, J. Chang, J. Zhu, T.X. Wei, Molecularly imprinted polymers for highly sensitive detection of morphine using surface plasmon resonance spectroscopy, Chin. Chem. Lett. 22 (2011) 477-480.
-
[25] V.K. Gupta, M.L. Yola, N.Özaltın, et al., Molecularimprinted polypyrrole modified glassy carbon electrode for the determination of tobramycin, Electrochim. Acta 112 (2013) 37-43.[25] V.K. Gupta, M.L. Yola, N.Özaltın, et al., Molecularimprinted polypyrrole modified glassy carbon electrode for the determination of tobramycin, Electrochim. Acta 112 (2013) 37-43.
-
[26] M.L. Yola, L. Uzun, N. Özaltın, A. Denizli, Development of molecular imprinted nanosensor for determination of tobramycin in pharmaceuticals and foods, Talanta 120 (2014) 318-324.[26] M.L. Yola, L. Uzun, N. Özaltın, A. Denizli, Development of molecular imprinted nanosensor for determination of tobramycin in pharmaceuticals and foods, Talanta 120 (2014) 318-324.
-
[27] M.L. Yola, T. Eren, N. Atar, Molecular imprinted nanosensor based on surface plasmon resonance: application to the sensitive determination of amoxicillin, Sens. Actuators: B 195 (2014) 28-35.[27] M.L. Yola, T. Eren, N. Atar, Molecular imprinted nanosensor based on surface plasmon resonance: application to the sensitive determination of amoxicillin, Sens. Actuators: B 195 (2014) 28-35.
-
[28] M. Frasconi, R. Tel-Vered, M. Riskin, I. Willner, Surface plasmon resonance analysis of antibiotics using imprinted boronic acid-functionalized Au nanoparticle composites, Anal. Chem. 82 (2010) 2512-2519.[28] M. Frasconi, R. Tel-Vered, M. Riskin, I. Willner, Surface plasmon resonance analysis of antibiotics using imprinted boronic acid-functionalized Au nanoparticle composites, Anal. Chem. 82 (2010) 2512-2519.
-
[29] B.M. Riskin, R. Tel-Vered, I. Willner, Imprinted Au-nanoparticle composites for the ultra-sensitive surface plasmon resonance detection of hexahydro-1,3,5-trinitro-1,3,5-triazine (RDX), Adv. Mater. 22 (2010) 1387-1391.[29] B.M. Riskin, R. Tel-Vered, I. Willner, Imprinted Au-nanoparticle composites for the ultra-sensitive surface plasmon resonance detection of hexahydro-1,3,5-trinitro-1,3,5-triazine (RDX), Adv. Mater. 22 (2010) 1387-1391.
-
[30] R.B. Pernites, R.R. Ponnapati, R.C. Advincula, Surface plasmon resonance (SPR) detection of theophylline via electropolymerized molecularly imprinted polythiophenes, Macromolecules 43 (2010) 9724-9735.[30] R.B. Pernites, R.R. Ponnapati, R.C. Advincula, Surface plasmon resonance (SPR) detection of theophylline via electropolymerized molecularly imprinted polythiophenes, Macromolecules 43 (2010) 9724-9735.
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