Citation: Chen-Huan Wang, Xiao-Xing Ma, Chun Wang, Qiu-Hua Wu, Zhi Wang. Poly(vinylidene fluoride) membrane based thin film microextraction for enrichment of benzoylurea insecticides from water samples followed by their determination with HPLC[J]. Chinese Chemical Letters, ;2014, 25(12): 1625-1629. doi: 10.1016/j.cclet.2014.06.018 shu

Poly(vinylidene fluoride) membrane based thin film microextraction for enrichment of benzoylurea insecticides from water samples followed by their determination with HPLC

  • Corresponding author: Qiu-Hua Wu,  Zhi Wang, 
  • Received Date: 4 May 2014
    Available Online: 16 June 2014

    Fund Project: Financial supports from the National Natural Science Foundation of China (No. 31171698) (No. 31171698) the Innovation Research Program of Department of Education of Hebei for Hebei Provincial Universities (No. LJRC009) (No. LJRC009) and the Natural Science Foundation of Hebei (No. B2012204028) are gratefully acknowledged. (No. ZD20131033)

  • Thin-film microextraction (TFME), a new geometry for solid-phase microextraction, has become an attractive sample-preparation technique. Compared to other microextraction approaches, the sensitivity of this technique was enhanced without sacrificing the sampling time due to the high surface area-tovolume ratio together with the increase of extraction-phase volume. In this paper, a new TFME method based on poly(vinylidene fluoride) membrane was developed for the extraction of benzoylurea insecticides (diflubenzuron, triflumuron, hexaflumuron and teflubenzuron) from water samples followed by their determination with high performance liquid chromatography-diode array detection. Under the optimal conditions, good linearity was observed over the concentration range of 0.5-100.0 ng/mL with correlation coefficient greater than 0.9994. The limits of detection (S/N = 3) of the method for the target analytes were 0.1 ng/mL. Mean recoveries ranged from 87.7% to 103.9% with relative standard deviations lower than 6.5%. The results indicated that the developed TFMEmethod is simple, efficient, and cost effective.
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    1. [1]

      [1] J.K. Zhou, R.Y. Liu, G. Song, M.C. Zhang, Determination of carbamate and benzoylurea insecticides in peach juice drink by floated organic drop microextractionhigh performance liquid chromatography, Anal. Lett. 42 (2009) 1805-1819.

    2. [2]

      [2] F. Matsumura, Studies on the action mechanism of benzoylurea insecticides to inhibit the process of chitin synthesis in insects: a review on the status of research activities in the past, the present and the future prospects, Pestic. Biochem. Physiol. 97 (2010) 133-139.

    3. [3]

      [3] A.C. Gerecke, S. Canonica, S.R. Mü ller, M. Schä rer, R.P. Schwarzenbach, Quantification of dissolved natural organic matter (DOM) mediated phototransformation of phenylurea herbicides in lakes, Environ. Sci. Technol. 35 (2001) 3915-3923.

    4. [4]

      [4] G. García, M. Martínez Galera, D. Barranco Martínez, J. Gisbert Gallego, Determination of benzoylureas in ground water samples by fully automated on-line preconcentration and liquid chromatography-fluorescence detection, J. Chromatogr. A 1103 (2006) 271-277.

    5. [5]

      [5] J. Mensah, E. Lundanes, T. Greibrokk, B. Holen, Determination of diflubenzuron in apples by gas chromatography, J. Chromatogr. A 765 (1997) 85-90.

    6. [6]

      [6] A. Valenzuela, R. Lorenzini, M. Redondo, G. Font, Matrix solid-phase dispersion microextraction and determination by high-performance liquid chromatography with UV detection of pesticide residues in citrus fruit, J. Chromatogr. A 839 (1999) 101-107.

    7. [7]

      [7] G.E. Miliadis, N.G. Tsiropoulos, P.G. Aplada-Sarlis, High-performance liquid chromatographic determination of benzoylurea insecticides residues in grapes and wine using liquid and solid-phase extraction, J. Chromatogr. A 835 (1999) 113-120.

    8. [8]

      [8] A.M. de la Pena, M. Mahedero, A. Bautista-Sánchez, Monitoring of phenylurea and propanil herbicides in river water by solid-phase-extraction high performance liquid chromatography with photoinduced-fluorimetric detection, Talanta 60 (2003) 279-285.

    9. [9]

      [9] A.G. Frenich, M.G. García, F. Arrebola, et al., Determination of parts per trillion levels of benzoylurea pesticides in groundwater by high-performance liquid chromatography-electrospray ionization mass spectrometry, Chromatographia 52 (2000) 569-574.

    10. [10]

      [10] R. Carabias-Martínez, E. Rodríguez-Gonzalo, E. Herrero-Herná ndez, J. Hernández-Mé ndez, Simultaneous determination of phenyl-and sulfonylurea herbicides in water by solid-phase extraction and liquid chromatography with UV diode array or mass spectrometric detection, Anal. Chim. Acta 517 (2004) 71-79.

    11. [11]

      [11] R. Dommarco, A. Santilio, L. Fornarelli, M. Rubbiani, Simultaneous quantitative determination of thirteen urea pesticides at sub-ppb levels on a Zorbax SB-C18 column, J. Chromatogr. A 825 (1998) 200-204.

    12. [12]

      [12] J.C. Wu, C. Tragas, H. Lord, J. Pawliszyn, Analysis of polar pesticides in water and wine samples by automated in-tube solid-phase microextraction coupled with high-performance liquid chromatography-mass spectrometry, J. Chromatogr. A 976 (2002) 357-367.

    13. [13]

      [13] J.F. Zhang, Z. Liang, S. Li, et al., In-situ metathesis reaction combined with ultrasound-assisted ionic liquid dispersive liquid-liquid microextraction method for the determination of phenylurea pesticides in water samples, Talanta 98 (2012) 145-151.

    14. [14]

      [14] R.F. Jiang, J. Pawliszyn, Thin-film microextraction offers another geometry for solid-phase microextraction, Trends Anal. Chem. 39 (2012) 245-253.

    15. [15]

      [15] Z.P. Qin, L. Bragg, G.F. Ouyang, V.H. Niri, J. Pawliszyn, Solid-phase microextraction under controlled agitation conditions for rapid on-site sampling of organic pollutants in water, J. Chromatogr. A 1216 (2009) 6979-6985.

    16. [16]

      [16] M. Saraji, B. Farajmand, Chemically modified cellulose paper as a thin film microextraction phase, J. Chromatogr. A 1314 (2013) 24-30.

    17. [17]

      [17] F.S. Mirnaghi, J. Pawliszyn, Development of coatings for automated 96-blade solid phase microextraction-liquid chromatography-tandem mass spectrometry system, capable of extracting a wide polarity range of analytes from biological fluids, J. Chromatogr. A 1261 (2012) 91-98.

    18. [18]

      [18] F.S. Mirnaghi, M.R.N. Monton, J. Pawliszyn, Thin-film octadecyl-silica glass coating for automated 96-blade solid-phase microextraction coupled with liquid chromatography-tandem mass spectrometry for analysis of benzodiazepines, J. Chromatogr. A 1246 (2012) 2-8.

    19. [19]

      [19] S. Deshmukh, K. Li, Effect of ethanol composition in water coagulation bath on morphology of PVDF hollow fibre membranes, J. Membr. Sci. 150 (1998) 75-85.

    20. [20]

      [20] Y. Chen, L. Ying, W. Yu, E. Kang, K. Neoh, Poly(vinylidene fluoride) with grafted poly(ethylene glycol) side chains via the RAFT-mediated process and pore size control of the copolymer membranes, Macromolecules 36 (2003) 9451-9457.

    21. [21]

      [21] Y. Chang, Y.J. Shih, R.C. Ruaan, et al., Preparation of poly (vinylidene fluoride) microfiltration membrane with uniform surface-copolymerized poly (ethylene glycol) methacrylate and improvement of blood compatibility, J. Membr. Sci. 309 (2008) 165-174.

    22. [22]

      [22] S.R. Chae, H. Yamamura, K. Ikeda, Y. Watanabe, Comparison of fouling characteristics of two different poly-vinylidene fluoride microfiltration membranes in a pilot-scale drinking water treatment system using pre-coagulation/sedimentation, sand filtration, and chlorination, Water Res. 42 (2008) 2029-2042.

    23. [23]

      [23] B. Wu, K. Li, W.K. Teo, Preparation and characterization of poly (vinylidene fluoride) hollow fiber membranes for vacuum membrane distillation, J. Appl. Polym. Sci. 106 (2007) 1482-1495.

    24. [24]

      [24] E. Salehi, S. Madaeni, F. Heidary, Dynamic adsorption of Ni (Ⅱ) and Cd (Ⅱ) ions from water using 8-hydroxyquinoline ligand immobilized PVDF membrane: isotherms, thermodynamics and kinetics, Sep. Purif. Technol. 94 (2012) 1-8.

    25. [25]

      [25] X.F. Yin, Z. Li, S.H. Zhang, et al., Determination of strychnine and brucine in traditional Chinese medicine preparations by micelle to solvent stacking in capillary zone electrophoresis, Chin. Chem. Lett. 22 (2011) 330-333.

    26. [26]

      [26] C.X. Wu, Q.H. Wu, C. Wang, Z. Wang, A novel method for the determination of trace copper in cereals by dispersive liquid-liquid microextraction based on solidification of floating organic drop coupled with flame atomic absorption spectrometry, Chin. Chem. Lett. 22 (2011) 473-476.

    27. [27]

      [27] P.P. Vázquez, A.R. Mughari, M.M. Galera, Solid-phase microextraction for the determination of benzoylureas in orange juice using liquid chromatography combined with post-column photochemically induced fluorimetry derivatization and fluorescence detection, J. Sep. Sci. 31 (2008) 56-63.

    28. [28]

      [28] L. Pareja, V. Cesio, H. Heinzen, A.R. Fernandez-Alba, Evaluation of various QuEChERS based methods for the analysis of herbicides and other commonly used pesticides in polished rice by LC-MS/MS, Talanta 83 (2011) 1613-1622.

    29. [29]

      [29] J.H. Zhang, M. Li, M.Y. Yang, et al., Magnetic retrieval of ionic liquids: fast dispersive liquid-liquid microextraction for the determination of benzoylurea insecticides in environmental water samples, J. Chromatogr. A 1254 (2012) 23-29.

    30. [30]

      [30] Q.X. Zhou, X.G. Zhang, Combination of ultrasound-assisted ionic liquid dispersive liquid-phase microextraction and high performance liquid chromatography for the sensitive determination of benzoylureas pesticides in environmental water samples, J. Sep. Sci. 33 (2010) 3734-3740.

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