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Drinking water (Kabor et al., 2018) (Boone et al., 2019) (Domingo, 2012) (Eriksson, Krrman, Rotander, Mikkelsen, & Dam, 2013) (Eschauzier, Beerendonk, Scholte-Veenendaal, & De Voogt, 2012; Eschauzier, Hoppe, Schlummer, & de Voogt, 2013) (Eschauzier, Hoppe, et al., 2013) (Essumang et al., 2017) (Haug et al., 2010) (Kunacheva et al., 2012) (Llorca et al., 2012) (Schwanz, Llorca, Farre, & Barcelo, 2016) (Shiwaku et al., 2016) (Brandsma, Koekkoek, van Velzen, & de Boer, 2019; Thompson, Eaglesham, & Mueller, 2011) (Gebbink, Van Asseldonk, & Van Leeuwen, 2017) (Harrad, Wemken, Drage, Abdallah, & Coggins, 2019) (Heo, Lee, Kim, & Oh, 2014) Groundwater 1. (Barreca et al., 2018) 2. (Bjrnsdotter, Yeung, Krrman, & Ericson Jogsten, 2020) 3. (Boiteux et al., 2016) 4. (Boiteux, Dauchy, Rosin, & Boiteux, 2012) 5. (Brueller et al., 2018) 6. (Dauchy, Boiteux, Bach, Rosin, & Munoz, 2017) 7. (Eschauzier, Raat, Stuyfzand, & De Voogt, 2013; Filipovic et al., 2014) 8. (Gao et al., 2019; Gobelius et al., 2018; Harrad, Drage, Sharkey, & Berresheim, 2020; Janda, Ndler, Brauch, Zwiener, & Lange, 2019; Mazzoni, Rusconi, Valsecchi, Martins, & Polesello, 2015; Munoz et al., 2017) 9. (Pignotti et al., 2017) 10. (Sammut, Sinagra, Sapiano, Helmus, & de Voogt, 2019) 11. (Zoboli et al., 2019) 12. (Dauchy et al., 2018) 13. Remaining data for groundwater have been retrieved from IPChem Barreca, S., Busetto, M., Vitelli, M., Colzani, L., Clerici, L., & Dellavedova, P. (2018). Online Solid-Phase Extraction LC-MS/MS: A Rapid and Valid Method for the Determination of Perfluorinated Compounds at Sub ngL-1 Level in Natural Water. Journal of Chemistry, 2018. doi:10.1155/2018/3780825 Bjrnsdotter, M. K., Yeung, L. W. Y., Krrman, A., & Ericson Jogsten, I. (2020). Challenges in the analytical determination of ultra-short-chain perfluoroalkyl acids and implications for environmental and human health. Analytical and Bioanalytical Chemistry, 412(20), 47854796. doi:10.1007/s00216-020-02692-8 Boiteux, V., Bach, C., Sagres, V., Hemard, J., Colin, A., Rosin, C., . . . Dauchy, X. (2016). Analysis of 29 per- and polyfluorinated compounds in water, sediment, soil and sludge by liquid chromatography-tandem mass spectrometry. International Journal of Environmental Analytical Chemistry, 96(8), 705-728. doi:10.1080/03067319.2016.1196683 Boiteux, V., Dauchy, X., Rosin, C., & Boiteux, J. F. V. (2012). National screening study on 10 perfluorinated compounds in raw and treated tap water in france. Archives of Environmental Contamination and Toxicology, 63(1), 1-12. doi:10.1007/s00244-012-9754-7 Boone, J. S., Vigo, C., Boone, T., Byrne, C., Ferrario, J., Benson, R., . . . Glassmeyer, S. T. (2019). Perand polyfluoroalkyl substances in source and treated drinking waters of the United States. Science of The Total Environment, 653, 359-369. doi:https://doi.org/10.1016/j.scitotenv.2018.10.245 Brandsma, S. H., Koekkoek, J. C., van Velzen, M. J. M., & de Boer, J. (2019). The PFOA substitute GenX detected in the environment near a fluoropolymer manufacturing plant in the Netherlands. Chemosphere, 220, 493-500. doi:10.1016/j.chemosphere.2018.12.135 Brueller, W., Inreiter, N., Boegl, T., Rubasch, M., Saner, S., Humer, F., . . . Allerberger, F. (2018). Occurrence of chemicals with known or suspected endocrine disrupting activity in drinking water, groundwater and surface water, Austria 2017/2018. Bodenkultur, 69(3), 155-173. doi:10.2478/boku-2018-0014 Dauchy, X., Boiteux, V., Bach, C., Rosin, C., & Munoz, J. F. (2017). Per- and polyfluoroalkyl substances in firefighting foam concentrates and water samples collected near sites impacted by the use of these foams. Chemosphere, 183, 53-61. doi:10.1016/j.chemosphere.2017.05.056 Dauchy, X., Boiteux, V., Colin, A., Hemard, J., Bach, C., Rosin, C., & Munoz, J. F. (2018). Deep seepage of per- and polyfluoroalkyl substances through the soil of a firefighter training site and subsequent groundwater contamination. Chemosphere, 214, 729-737. doi:10.1016/j.chemosphere.2018.10.003 Domingo, J. L. (2012). Health risks of dietary exposure to perfluorinated compounds. Environment International, 40, 187-195. doi:10.1016/j.envint.2011.08.001 Eriksson, U., Krrman, A., Rotander, A., Mikkelsen, B., & Dam, M. (2013). Perfluoroalkyl substances (PFASs) in food and water from Faroe Islands. Environmental Science and Pollution Research, 20(11), 7940-7948. doi:10.1007/s11356-013-1700-3 Eschauzier, C., Beerendonk, E., Scholte-Veenendaal, P., & De Voogt, P. (2012). Impact of treatment processes on the removal of perfluoroalkyl acids from the drinking water production chain. Environ Sci Technol, 46(3), 1708-1715. doi:10.1021/es201662b Eschauzier, C., Hoppe, M., Schlummer, M., & de Voogt, P. (2013). Presence and sources of anthropogenic perfluoroalkyl acids in high-consumption tap-water based beverages. Chemosphere, 90(1), 36-41. doi:10.1016/j.chemosphere.2012.06.070 Eschauzier, C., Raat, K. J., Stuyfzand, P. J., & De Voogt, P. (2013). Perfluorinated alkylated acids in groundwater and drinking water: identification, origin and mobility. Sci Total Environ, 458460, 477-485. doi:10.1016/j.scitotenv.2013.04.066 Essumang, D. K., Eshun, A., Hogarh, J. N., Bentum, J. K., Adjei, J. K., Negishi, J., . . . Masunaga, S. (2017). Perfluoroalkyl acids (PFAAs) in the Pra and Kakum River basins and associated tap water in Ghana. Science of The Total Environment, 579, 729-735. doi:10.1016/j.scitotenv.2016.11.035 Filipovic, M., Woldegiorgis, A., Norstrom, K., Bibi, M., Lindberg, M., & Osteras, A. H. (2014). Historical usage of aqueous film forming foam: A case study of the widespread distribution of perfluoroalkyl acids from a military airport to groundwater, lakes, soils and fish. Chemosphere. doi:10.1016/j.chemosphere.2014.09.005 Gao, Q., Blum, K. M., Gago-Ferrero, P., Wiberg, K., Ahrens, L., & Andersson, P. L. (2019). Impact of onsite wastewater infiltration systems on organic contaminants in groundwater and recipient waters. Science of The Total Environment, 651, 1670-1679. doi:10.1016/j.scitotenv.2018.10.016 Gebbink, W. A., Van Asseldonk, L., & Van Leeuwen, S. P. J. (2017). Presence of Emerging Per- and Polyfluoroalkyl Substances (PFASs) in River and Drinking Water near a Fluorochemical Production Plant in the Netherlands. Environmental Science and Technology, 51(19), 1105711065. doi:10.1021/acs.est.7b02488 Gobelius, L., Hedlund, J., Drig, W., Trger, R., Lilja, K., Wiberg, K., & Ahrens, L. (2018). Per- and Polyfluoroalkyl Substances in Swedish Groundwater and Surface Water: Implications for Environmental Quality Standards and Drinking Water Guidelines. Environmental Science and Technology, 52(7), 4340-4349. doi:10.1021/acs.est.7b05718 Harrad, S., Drage, D. S., Sharkey, M., & Berresheim, H. (2020). Perfluoroalkyl substances and brominated flame retardants in landfill-related air, soil, and groundwater from Ireland. Science of The Total Environment, 705. doi:10.1016/j.scitotenv.2019.135834 Harrad, S., Wemken, N., Drage, D. S., Abdallah, M. A. E., & Coggins, A. M. (2019). Perfluoroalkyl Substances in Drinking Water, Indoor Air and Dust from Ireland: Implications for Human Exposure. Environmental Science and Technology. doi:10.1021/acs.est.9b04604 Haug, L. S., Salihovic, S., Jogsten, I. E., Thomsen, C., van Bavel, B., Lindstrom, G., & Becher, G. (2010). Levels in food and beverages and daily intake of perfluorinated compounds in Norway. Chemosphere, 80(10), 1137-1143. doi:10.1016/j.chemosphere.2010.06.023 Heo, J. J., Lee, J. W., Kim, S. K., & Oh, J. E. (2014). Foodstuff analyses show that seafood and water are major perfluoroalkyl acids (PFAAs) sources to humans in Korea. Journal of Hazardous Materials, 279, 402-409. doi:10.1016/j.jhazmat.2014.07.004 Janda, J., Ndler, K., Brauch, H. J., Zwiener, C., & Lange, F. T. (2019). Robust trace analysis of polar (C2-C8) perfluorinated carboxylic acids by liquid chromatography-tandem mass spectrometry: method development and application to surface water, groundwater and drinking water. Environmental Science and Pollution Research, 26(8), 7326-7336. doi:10.1007/s11356-018-1731-x Kabor, H. A., Vo Duy, S., Munoz, G., Mit, L., Desrosiers, M., Liu, J., . . . Sauv, S. (2018). Worldwide drinking water occurrence and levels of newly-identified perfluoroalkyl and polyfluoroalkyl substances. 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