Analytical Methods for Environmental Contaminants of Emerging Concern. Группа авторов

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doi: 10.1002/wer.1380.

      6 6 Ochoa, V. and Maestroni, B. (2018). Pesticides in water, soil, and sediments. In: Integrated Analytical Approaches for Pesticide Management, 1st ed. (ed. B. Maestroni and A. Cannavan), 133–147. Amsterdam: Elsevier. doi: 10.1016/B978-0-12-816155-5.00009-9.

      7 7 Ramakrishnan, B., Venkateswarlu, K., Sethunathan, N., and Megharaj, M. (2019). Local applications but global implications: can pesticides drive microorganisms to develop antimicrobial resistance? Sci. Total Environ. 654: 177–189. doi: 10.1016/j.scitotenv.2018.11.041.

      8 8 Hernández, F., Bakker, J., Bijlsma, L., de Boer, J., Botero-Coy, A.M., Bruinen de Bruin, Y., Fischer, S., Hollander, J., Kasprzyk-Hordern, B., Lamoree, M., López, F.J., Ter Laak, T.L., van Leerdam, J.A., Sancho, J.V., Schymanski, E.L., de Voogt, P., and Hogendoorn, E.A. (2019). The role of analytical chemistry in exposure science: focus on the aquatic environment. Chemosphere 222: 564–583. doi: 10.1016/j.chemosphere.2019.01.118.

      9 9 European Union (2008). Directive 2008/105/EC of the European Parliament and of the Council of 16 December 2008 on environmental quality standards in the field of water policy, amending and subsequently repealing Council Directives 82/176/EEC, 83/513/EEC, 84/156/EEC, 84/491/EEC. 86/280/EEC and amending Directive 2000/60/EC of the European Parliament and of the Council. Official Journal of the European Union L348: 84–97.

      10 10 European Union (2013). Directive 2013/39/EU of the European Parliament and of the Council of 12 August 2013 amending Directives 2000/60/EC and 2008/105/EC as regards priority substances in the field of water policy. Official Journal of the European Union L226: 1–17.

      11 11 European Union (2020). Commission implementing Decision (EU) 2020/1161 of 4 August 2020 establishing a watch list of substances for Union-wide monitoring in the field of water policy pursuant to Directive 2008/105/EC of the European Parliament and of the Council. Official Journal of the European Union L257: 32–35.

      12 12 European Union (2015). Commission Directive (EU) 2015/1787 of 6 October 2015 amending Annexes II and III to Council Directive 98/83/EC on the quality of water intended for human consumption. Official Journal of the European Union L260: 6–17.

      13 13 European Union (2006). Directive 2006/118/EC of the European parliament and of the Council of 12 December 2006 on the protection of groundwater against pollution and deterioration. Official Journal of the European Union L372: 19–31.

      14 14 US EPA (2020). Water quality criteria. https://www.epa.gov/wqc. Accessed 14 December 2021.

      15 15 US EPA (2020). National primary drinking water regulations. https://www.epa.gov/ground-water-and-drinking-water/national-primary-drinking-water-regulations#Organic. Accessed 14 December 2021.

      16 16 US EPA (2020) Main water legislation. https://www.epa.ie/water/waterleg. Accessed 14 December 2021.

      17 17 Spanish Ministry of Presidency (2005). Royal Decree 9/2005 of 14 January which establishes a list of potentially soil contaminating activities and criteria and standards for declaring that sites are contaminated. Official Gazette of the Spanish State 15: 1833–1843.

      18 18 Wong, K.L.K., Webb, D.T., Nagorzanski, M.R., Kolpin, D.W., Hladik, M.L., Cwiertny, D.M., and LeFevre, G.H. (2019). Chlorinated byproducts of neonicotinoids and their metabolites: an unrecognized human exposure potential? Environ. Sci. Technol. Lett. 6: 98–105. doi: 10.1021/acs.estlett.8b00706.

      19 19 Kiss, A. and Virág, D. (2009). Photostability and photodegradation pathways of distinctive pesticides. J. Environ. Qual. 38: 157–163. doi: 10.2134/jeq2007.0504.

      20 20 Ibáñez, M., Sancho, J.V., Pozo, Ó.J., and Hernández, F. (2006). Use of liquid chromatography quadrupole time-of-flight mass spectrometry in the elucidation of transformation products and metabolites of pesticides. Diazinon as a case study. Anal. Bioanal. Chem. 384: 448–457. doi: 10.1007/s00216-005-0167-6.

      21 21 Li, M., Wang, R., Kong, Z., Gao, T., Wang, F., and Fan, B. (2020). Cyflumetofen degradation in different aquatic environments and identification of hydrolytic products. J. Environ. Chem. Eng. 8: 104512. doi: 10.1016/j.jece.2020.104512.

      22 22 Hensen, B., Olsson, O., and Kümmerer, K. (2020). A strategy for an initial assessment of the ecotoxicological effects of transformation products of pesticides in aquatic systems following a tiered approach. Environ. Int. 137: 105533. doi: 10.1016/j.envint.2020.105533.

      23 23 Fonseca, E., Renau-Pruñonosa, A., Ibáñez, M., Gracia-Lor, E., Estrela, T., Jiménez, S., Pérez-Martín, M.A., González, F., Hernández, F., and Morell, I. (2019). Investigation of pesticides and their transformation products in the Júcar River Hydrographical Basin (Spain) by wide-scope high-resolution mass spectrometry screening. Environ. Res. 177: 108570. doi: 10.1016/j.envres.2019.108570.

      24 24 Quintana, J., de La Cal, A., and Boleda, M.R. (2019). Monitoring the complex occurrence of pesticides in the Llobregat basin, natural and drinking waters in Barcelona metropolitan area (Catalonia, NE Spain) by a validated multi-residue online analytical method. Sci. Total Environ. 692: 952–965. doi: 10.1016/j.scitotenv.2019.07.317.

      25 25 Fisher, I.J., Phillips, P.J., Bayraktar, B.N., Chen, S., McCarthy, B.A., and Sandstrom, M.W. (2021). Pesticides and their degradates in groundwater reflect past use and current management strategies, Long Island, New York, USA. Sci. Total Environ. 752: 141895. doi: 10.1016/j.scitotenv.2020.141895.

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