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Degradation of Perfluoroalkyl Ether Carboxylic Acids with Hydrated Electrons: Structure-Reactivity Relationships and Environmental Implications.
Bentel, Michael J; Yu, Yaochun; Xu, Lihua; Kwon, Hyuna; Li, Zhong; Wong, Bryan M; Men, Yujie; Liu, Jinyong.
Afiliación
  • Bentel MJ; Department of Chemical & Environmental Engineering , University of California, Riverside , Riverside , California 92521 , United States.
  • Yu Y; Department of Civil & Environmental Engineering , University of Illinois at Urbana-Champaign , Urbana , Illinois 61801 , United States.
  • Xu L; Department of Chemical & Environmental Engineering , University of California, Riverside , Riverside , California 92521 , United States.
  • Kwon H; Department of Chemical & Environmental Engineering , University of California, Riverside , Riverside , California 92521 , United States.
  • Li Z; Metabolomics Lab of Roy J. Carver Biotechnology Center , University of Illinois at Urbana-Champaign , Urbana , Illinois 61801 , United States.
  • Wong BM; Department of Chemical & Environmental Engineering , University of California, Riverside , Riverside , California 92521 , United States.
  • Men Y; Materials Science & Engineering Program , University of California, Riverside , Riverside , California 92521 , United States.
  • Liu J; Department of Chemical & Environmental Engineering , University of California, Riverside , Riverside , California 92521 , United States.
Environ Sci Technol ; 54(4): 2489-2499, 2020 02 18.
Article en En | MEDLINE | ID: mdl-31999101
ABSTRACT
This study explores structure-reactivity relationships for the degradation of emerging perfluoroalkyl ether carboxylic acid (PFECA) pollutants with ultraviolet-generated hydrated electrons (eaq-). The rate and extent of PFECA degradation depend on both the branching extent and the chain length of oxygen-segregated fluoroalkyl moieties. Kinetic measurements, theoretical calculations, and transformation product analyses provide a comprehensive understanding of the PFECA degradation mechanisms and pathways. In comparison to traditional full-carbon-chain perfluorocarboxylic acids, the distinct degradation behavior of PFECAs is attributed to their ether structures. The ether oxygen atoms increase the bond dissociation energy of the C-F bonds on the adjacent -CF2- moieties. This impact reduces the formation of H/F-exchanged polyfluorinated products that are recalcitrant to reductive defluorination. Instead, the cleavage of ether C-O bonds generates unstable perfluoroalcohols and thus promotes deep defluorination of short fluoroalkyl moieties. In comparison to linear PFECAs, branched PFECAs have a higher tendency of H/F exchange on the tertiary carbon and thus lower percentages of defluorination. These findings provide mechanistic insights for an improved design and efficient degradation of fluorochemicals.
Asunto(s)

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Asunto principal: Ácidos Carboxílicos / Fluorocarburos Idioma: En Revista: Environ Sci Technol Año: 2020 Tipo del documento: Article País de afiliación: Estados Unidos

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Asunto principal: Ácidos Carboxílicos / Fluorocarburos Idioma: En Revista: Environ Sci Technol Año: 2020 Tipo del documento: Article País de afiliación: Estados Unidos