Transformation, leaching and plant uptake simulations of 6:2 and 8:2 polyfluoroalkyl phosphate diesters (diPAPs) and related transformation products under near-natural conditions
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作者:
Eva Weidemann
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机构:University of Kassel,Department of Hydrology and Substance Balance
Eva Weidemann
René Lämmer
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机构:University of Kassel,Department of Hydrology and Substance Balance
René Lämmer
Bernd Göckener
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机构:University of Kassel,Department of Hydrology and Substance Balance
Bernd Göckener
Mark Bücking
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机构:University of Kassel,Department of Hydrology and Substance Balance
Mark Bücking
Matthias Gassmann
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机构:University of Kassel,Department of Hydrology and Substance Balance
Matthias Gassmann
机构:
[1] University of Kassel,Department of Hydrology and Substance Balance
[2] Fraunhofer Institute for Molecular Biology and Applied Ecology IME,Department of Trace Analysis & Environmental Monitoring
[3] Monash University,School of Clinical Sciences at Monash Health, Faculty of Medicine, Nursing and Health Sciences
In response to the growing concern over PFAS contamination, employing models to simulate PFAS behavior in the environment becomes necessary. This facilitates evaluating risks tied to leaching into groundwater, adsorption in soil, plant uptake, entry into the food chain, and the conversion of precursors into persistent PFAS. We utilized the MACRO model to simulate the behavior of the precursors 6:2 diPAP and 8:2 diPAP using data from a 2-year lysimeter experiment, key compound parameters were optimized via the caRamel evolutionary algorithm. We assumed that the transformation of both diPAP precursors into stable PFAAs is influenced by temperature and soil moisture, similar to pesticide degradation by microorganisms. Results reveal that the model accurately represents transformation, leaching, soil retention, and plant uptake of diPAP and transformation products. A comparison with a lab-based soil column study supports the slower natural degradation of precursors, affirming our modeling approach. Temperature and soil moisture could indicate that a worst-case scenario for transformation product leaching into groundwater could occur during a mild summer with moderate evapotranspiration and heavy rainfall. Plant uptake involves multiple elements: PFAS availability in the root zone depends on prior degradation or presence. Increased moisture in the root zone favors PFAS uptake combined with temperatures high enough for prior biotransformation. The calculation of temperature and moisture-based conversion rates was adopted directly from MACRO. It is recommended to further investigate these effects to validate and possibly modify them.
机构:
IMDEA Water Inst, Avda Punto Com 2, Alcala De Henares 28805, SpainIMDEA Water Inst, Avda Punto Com 2, Alcala De Henares 28805, Spain
Meffe, Raffaella
de Santiago-Martin, Ana
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IMDEA Water Inst, Avda Punto Com 2, Alcala De Henares 28805, SpainIMDEA Water Inst, Avda Punto Com 2, Alcala De Henares 28805, Spain
de Santiago-Martin, Ana
Teijon, Gloria
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IMDEA Water Inst, Avda Punto Com 2, Alcala De Henares 28805, SpainIMDEA Water Inst, Avda Punto Com 2, Alcala De Henares 28805, Spain
Teijon, Gloria
Hernandez, Virtudes Martinez
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IMDEA Water Inst, Avda Punto Com 2, Alcala De Henares 28805, SpainIMDEA Water Inst, Avda Punto Com 2, Alcala De Henares 28805, Spain
Hernandez, Virtudes Martinez
Lopez-Heras, Isabel
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IMDEA Water Inst, Avda Punto Com 2, Alcala De Henares 28805, SpainIMDEA Water Inst, Avda Punto Com 2, Alcala De Henares 28805, Spain
Lopez-Heras, Isabel
Nozal, Leonor
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IMDEA Water Inst, Avda Punto Com 2, Alcala De Henares 28805, Spain
Ctr Appl Chem & Biotechnol CQAB, FGUA, Alcala De Henares, Spain
Univ Alcala, A II Km 33,6, Alcala De Henares 28871, SpainIMDEA Water Inst, Avda Punto Com 2, Alcala De Henares 28805, Spain
Nozal, Leonor
de Bustamante, Irene
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IMDEA Water Inst, Avda Punto Com 2, Alcala De Henares 28805, Spain
Univ Alcala, Fac Sci, Dept Geog & Environm, Geol, External Campus,A II Km 33,6, Alcala De Henares, SpainIMDEA Water Inst, Avda Punto Com 2, Alcala De Henares 28805, Spain