Literature DB >> 33449633

Sorption of PFOS in 114 Well-Characterized Tropical and Temperate Soils: Application of Multivariate and Artificial Neural Network Analyses.

Anthony C Umeh1,2, Ravi Naidu1,2, Sonia Shilpi1, Emmanuel B Boateng3,4, Aminur Rahman1, Ian T Cousins5, Sreenivasulu Chadalavada2, Dane Lamb1, Mark Bowman6.   

Abstract

The influence of soil properties on PFOS sorption are not fully understood, particularly for variable charge soils. PFOS batch sorption isotherms were conducted for 114 temperate and tropical soils from Australia and Fiji, that were well-characterized for their soil properties, including total organic carbon (TOC), anion exchange capacity, and surface charge. In most soils, PFOS sorption isotherms were nonlinear. PFOS sorption distribution coefficients (Kd) ranged from 5 to 229 mL/g (median: 28 mL/g), with 63% of the Fijian soils and 35% of the Australian soils showing Kd values that exceeded the observed median Kd. Multiple linear regression showed that TOC, amorphous aluminum and iron oxides contents, anion exchange capacity, pH, and silt content, jointly explained about 53% of the variance in PFOS Kd in soils. Variable charge soils with net positive surface charges, and moderate to elevated TOC content, generally displayed enhanced PFOS sorption than in temperate or tropical soils with TOC as the only sorbent phase, especially at acidic pH ranges. For the first time, two artificial neural networks were developed to predict the measured PFOS Kd (R2 = 0.80) in the soils. Overall, both TOC and surface charge characteristics of soils are important for describing PFOS sorption.

Entities:  

Year:  2021        PMID: 33449633     DOI: 10.1021/acs.est.0c07202

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  1 in total

1.  Surface-water/groundwater boundaries affect seasonal PFAS concentrations and PFAA precursor transformations.

Authors:  Andrea K Tokranov; Denis R LeBlanc; Heidi M Pickard; Bridger J Ruyle; Larry B Barber; Robert B Hull; Elsie M Sunderland; Chad D Vecitis
Journal:  Environ Sci Process Impacts       Date:  2021-12-15       Impact factor: 4.238

  1 in total

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