240
Views
5
CrossRef citations to date
0
Altmetric
Environmental Analysis

Determination of Triazole Pesticides in the Surface Water of the Medjerda River, Tunisia

ORCID Icon, , &
Pages 742-759 | Received 03 Feb 2020, Accepted 05 Jun 2020, Published online: 02 Jul 2020

References

  • Abidi, S., M. Bejaoui, M. Jemli, and M. Boumaiza. 2015. Qualité des eaux du cours principal de la Medjerda et trois de ses affluents nord. Hydrological Sciences Journal 60 (9):1607–19. doi:10.1080/02626667.2014.909597.
  • Abidi, S., O. Hajji, and H. Habaieb. 2017. Study of rainfall variations in Tessa Subwatershed of Medjerda river in Tunisia. Water resources in arid areas: The way forward. Springer Water 59–74.
  • Bogialli, S., R. Curini, A. Di Corcia, A. Laganà, A. Stabile, and E. Sturchio. 2006. Development of a multiresidue method for analyzing herbicide and fungicide residues in bovine milk based on solid-phase extraction and liquid chromatography-tandem mass spectrometry. Journal of Chromatography. A 1102 (1-2):1–10. doi:10.1016/j.chroma.2005.10.011.
  • Bordagaray, A., E. Millán, and R. Garcia-Arrona. 2016. A review on microextraction techniques for selected triazole fungicides determination in water and food samples. Journal of Food Chemistry and Nanotechnology 2 (1):128–37. doi:10.17756/jfcn.2016-021.
  • Bouraoui, F., S. Benabdallah, A. Jrad, and G. Bidoglio. 2005. Application of the SWAT model on the Medjerda river basin (Tunisia). Physics and Chemistry of the Earth, Parts A/B/C 30 (8-10):497–507. doi:10.1016/j.pce.2005.07.004.
  • Brancato, A. 2018. Peer review of the pesticide risk assessment for the triazole derivative metabolites in light of confirmatory data submitted. European Food Safety Authority Journal 16 (7):5376–96.
  • Campo, J., A. Masiá, C. Blasco, and Y. Picó. 2013. Occurrence and removal efficiency of pesticides in sewage treatment plants of four mediterranean river basins. Journal of Hazardous Materials 263:146–57. doi:10.1016/j.jhazmat.2013.09.061.
  • Ccanccapa, A., A. Masiá, A. Navarro-Ortega, Y. Picó, and D. Barceló. 2016. Pesticides in the Ebro River basin: Occurrence and risk assessment. Environmental Pollution 211 (30):414–24. doi:10.1016/j.envpol.2015.12.059.
  • Hostasch, E.  1998. Council Directive 98/83/EC on the quality of water intended for human consumption. Official Journal of the European Communities, Luxembourg.
  • Djebbi, M. 2012. Delineation of the flood prone zones along the Medjerda River downstream of Sidi Salem Dam in Tunisia. Journal of Sustainable Watershed Science and Management 1 (2):46–52. doi:10.5147/jswsm.v1i2.133.
  • Etteieb, S., S. Cherif, and J. Tarhouni. 2017. Hydrochemical assessment of water quality for irrigation: A case study of the Medjerda River in Tunisia. Applied Water Science 7 (1):469–80. doi:10.1007/s13201-015-0265-3.
  • Filik, H., and S. D. Çekiç. 2011. Cloud point extraction of pesticide residues, pesticides in the modern world. Trends in Pesticides Analysis 248–80.
  • Gafrej, R. and Lamloum, O. 2017. International alert, Gouvernance de l’eau en Tunisie Etude du cas du gouvernorat de Kasserine, 25–27.
  • Gatto, N. M., M. Cockburn, J. Bronstein, A. D. Manthripragada, and B. Ritz. 2009. Well-water consumption and Parkinson's disease in rural California. Environmental Health Perspectives 117 (12):1912–18. doi:10.1289/ehp.0900852.
  • Haslinda, N., H. B. Khalil, and T. G. Huat. 2013. Determination of triazole fungicides in fruits and vegetables by liquid chromatography-mass spectrometry (LC/MS). International Journal of Agricultural Chemistry 1 (1):169–84.
  • Jdid, E. A., P. Blazy, S. Kamoun, A. Guedria, B. Marouf, and S. Kitane. 1999. Environmental impact of mining activity on the pollution of the Medjerda River, north-west Tunisia. Bulletin of Engineering Geology and the Environment 57 (3):273–80. doi:10.1007/s100640050045.
  • Jia, L., J. Yang, W. Zhao, and X. Jing. 2019. Air-assisted ionic liquid dispersive liquid–liquid microextraction based on solidification of the aqueous phase for the determination of triazole fungicides in water samples by high-performance liquid chromatography. RSC Advances 9 (63):36664–69. doi:10.1039/C9RA07348E.
  • Khalil, N. H. H. B., and T. G. Huat. 2013. Determination of triazole fungicides in fruits and vegetables by liquid chromatography-mass spectrometry (LC/MS). Agricultural Chemistry 170–84.
  • Khammas, A. A. Z., and S. S. Ahmad. 2016. Cloud point extraction of carbendazim pesticide in foods and environmental matrices prior to visible spectrophotometric determination science. Journal of Analytical Chemistry 4 (3):30–41.
  • Kolberg, D. I. S., S. Zechmann, C. Wildgrube, I. Sigalov, E. Scherbaum, and M. Anastassiades. 2016. Determination of Triazole Derivative Metabolites (TDMs) in fruit and vegetables using the QuPPe method and Differential Mobility Spectrometry (DMS) and survey of the residue situation in organic and conventional produce. Aspects of Food Control and Animal Health 2016 (02):2196–3460.
  • Lawal, A., R. C. S. Wong, G. H. Tan, L. B. Abdulra'uf, and A. M. A. Alsharif. 2018. Recent modifications and validation of QuEChERS-dSPE coupled to LC-MS and GC-MS instruments for determination of pesticide/agrochemical residues in fruits and vegetables: Review. Journal of Chromatographic Science 56 (7):656–69. doi:10.1093/chromsci/bmy032.
  • Lhomme, L.,. S. Brosillon, and D. Wolbert. 2007. Photocatalytic degradation of a triazole pesticide, cyproconazole, in water. Journal of Photochemistry and Photobiology A: Chemistry 188 (1):34–42. doi:10.1016/j.jphotochem.2006.11.015.
  • Li, Y., J. Zhang, B. Peng, S. Li, H. Gao, and W. Zhou. 2013. Determination of triazole pesticides in rat blood by the combination of ultrasound-enhanced temperature-controlled ionic liquid dispersive liquid–liquid microextraction coupled to high-performance liquid chromatography. Analytical Methods 5 (9):2241–48. doi:10.1039/c3ay25626j.
  • Mahale, V., A. Singh, G. S. Phadke, A. D. Ghanate, D. P. Oulkar, K. Banerjee, and V. Panchagnula. 2017. Determination of triazines and triazoles in grapes using atmospheric pressure matrix-assisted laser desorption/ionization high-resolution mass spectrometry. Journal of AOAC International 100 (3):640–46. doi:10.5740/jaoacint.17-0047.
  • Mehrdiba, T., M. Piriyaei, and L. Kanaani. 2016. Solid phase microextraction for measuring agricultural pesticides in natural samples. Asian Pacific Journal of Cancer Biology 1 (3):67–74. doi:10.31557/apjcb.2016.1.3.67-74.
  • Merzoug, A. N., and H. Merazig. 2012. Water pollution of Oued Medjerda in Algerian Souk Ahras Region. Water Quality Monitoring and Assessment 527–40.
  • Necibi, M., L. Lanceleur, N. Mzoughi, and M. Monperrus. 2016. Determination of synthetic musks in surface sediment from the bizerte lagoon by QuEChERS extraction followed by GC-MS. Bulletin of Environmental Contamination and Toxicology 97 (5):659–69. doi:10.1007/s00128-016-1935-z.
  • Necibi, M., and N. Mzoughi. 2019a. Distribution of organochlorine pesticides in sediment cores from the bizerte lagoon (Tunisia). International Journal of Environmental Analytical Chemistry 99:1–15. doi:10.1080/03067319.2019.1650173.
  • Necibi, M., and N. Mzoughi. 2019b. Distribution of organochlorine pesticides in suspended particulate matter and sediment from the Bizerte Lagoon. International Journal of Environmental Analytical Chemistry 12 (11):1–27. doi:10.1080/03067319.2019.1650173.
  • Necibi, M., N. Mzoughi, M. N. D. Yahia, and O. Pringault. 2015. Distributions of organochlorine pesticides and polychlorinated biphenyl in surface water from Bizerte Lagoon, Tunisia. Desalination and Water Treatment 56 (10):2663–71. doi:10.1080/19443994.2015.1024935.
  • Sagasta, J. M., S. M. Zadeh, and H. Turral. 2017. Water pollution from agriculture: A global review, 13–18. USA: Food and Agriculture Organization.
  • Santoro, A., A. Scopa, S. A. Bufo, M. Mansour, and H. Mountacer. 2000. Photodegradation of the triazole fungicide hexaconazole. Bulletin of Environmental Contamination and Toxicology 64 (4):475–80. doi:10.1007/s001280000028.
  • Shahinasi, E., F. Brahushi, A. Devolli, and M. Kodra. 2017. The ecotoxicology of pesticides group of triazole and their use to control apple scab (Venturia inaequalis). Journal of Hygienic Engineering and Design 634 (11):36–42.
  • Vieira, A., M. Santos, and E. Figueiredo. 2017. Solid-phase extraction of triazole fungicides from water samples using disks impregnated with carbon nanotubes followed by GC-MS analysis. International Journal of Environmental Analytical Chemistry 97 (1):29–41. doi:10.1080/03067319.2016.1272679.
  • Wang, C., Q. Wu, C. Wu, and Z. Wang. 2011. Application of dispersion-solidification liquid-liquid microextraction for the determination of triazole fungicides in environmental water samples by high-performance liquid chromatography. Journal of Hazardous Materials 185 (1):71–76. doi:10.1016/j.jhazmat.2010.08.124.
  • Wang, H., X. Yang, L. Hu, H. Gao, R. Lu, S. Zhang, and W. Zhou. 2016. Detection of triazole pesticides in environmental water and juice samples using dispersive liquid-liquid microextraction with solidified sedimentary Ionic Liquids. New Journal of Chemistry 40 (5):4696–704. doi:10.1039/C5NJ03376D.
  • Xu, X. Y., J. Q. Ye, J. Nie, Z. G. Li, and M. R. Lee. 2015. A new liquid-liquid microextraction method by ultrasound assisted salting out for determination of triazole pesticides in water samples coupled by gas chromatography-mass spectrometry. Analytical Methods 7 (3):1194–99. doi:10.1039/C4AY02448F.
  • Zhang, Q., L. Zhou, Y. Yang, X. Hua, H. Shi, and M. Wang. 2015. Study on the stereoselective degradation of three triazole fungicides in sediment. Ecotoxicology and Environmental Safety 117:1–6. doi:10.1016/j.ecoenv.2015.03.014.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.