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Published January 2020 | Version v1
Journal article

FerrateVI oxidation of polycyclic aromatic compounds (PAHs and polar PACs) on DNAPL-spiked sand: degradation efficiency and oxygenated by-product formation compared to conventional oxidants

  • 1. SERPOL (France)
  • 2. Université de Lorraine. CNRS, CREGU, GeoRessources (France)
  • 3. Bureau de Recherches Géologiques et Minières (BRGM) (France)
  • 4. Université de Lorraine. CNRS, Laboratoire Interdisciplinaire des Environnements Continentaux (LIEC) (France)
  • 5. Université de Pau & Pays Adour. CNRS, Institut des Sciences Analytiques et de Physico-Chimie pour l'Environnement et les Matériaux (IPREM UMR CNRS 5254) (France)

Description

In situ chemical oxidations are known to remediate PAH contaminations in groundwater and soils. In this study, batch-scale oxidations aim to compare the PAC (polycyclic aromatic compound) degradation of three oxidation processes traditionally applied for soil treatment: permanganate, heat-activated persulfate (60 °C) and Fenton-like activated by magnetite, to results obtained with ferrates (FeVI). Widely studied for water treatments, ferrates are efficient on a wide range of pollutants with the advantage of producing nontoxic ferric sludge after reaction. However, fewer works focus on their action on soil, especially on semi-industrial grade ferrates (compatible with field application). Oxidations were carried out on sand spiked with dense non-aqueous phase liquid (DNAPL) sampled in the groundwater of a former coking plant. Conventional 16 US-EPA PAHs and polar PACs were monitored, especially potential oxygenated by-products that can be more harmful than parent-PAHs. After seven reaction days, only the Fenton-like showed limited degradation. Highest efficiencies were obtained for heat-activated persulfate with no O-PAC ketones formed. Permanganate gave important degradation, but ketones were generated in large amount. The tested ferrates not only gave slightly lower yields due to their auto-decomposition but also induced O-PAC ketone production, suggesting a reactional pathway dominated by oxidoreductive electron transfer, rather than a radical one.

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Publishing Information

Journal Title
Environmental Science and Pollution Research International
Journal Volume
27
Journal Issue
1
Journal Page Range
p. 704-716
ISSN
0944-1344
CODEN
ESPLEC

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Copyright
Copyright (c) 2019 © Springer-Verlag GmbH Germany, part of Springer Nature 2019