4.8 Article

Thermal Decomposition of Anionic, Zwitterionic, and Cationic Polyfluoroalkyl Substances in Aqueous Film-Forming Foamse

Journal

ENVIRONMENTAL SCIENCE & TECHNOLOGY
Volume 55, Issue 14, Pages 9885-9894

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.est.1c02125

Keywords

PFAS; thermal transformation; precursor compounds; thermal generation of PFAS; thermal decomposition of PFAS; decomposition mechanisms; high-resolution PIS

Funding

  1. U.S. National Science Foundation CAREER Program [2047062]
  2. U.S. Environmental Protection Agency Science to Achieve Results (STAR) Program [RD839660]
  3. NIH [5P30GM103329-05]
  4. Larson Foundation
  5. Directorate For Engineering
  6. Div Of Chem, Bioeng, Env, & Transp Sys [2047062] Funding Source: National Science Foundation

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This study investigated the thermal decomposition mechanisms of various polyfluoroalkyl substances, revealing the formation of perfluoroalkyl compounds and different decomposition pathways. It also demonstrated the generation of anionic fluoroalkyl substances from AFFF samples through low-temperature thermal treatments.
In this study, we investigated thermal decomposition mechanisms of cationic, zwitterionic, and anionic polyfluoroalkyl substances, including those present in aqueous film-forming foam (AFFF) samples. We present novel evidence that polyfluoroalkyl substances gave quantitative yields of perfluoroalkyl substances of different chain lengths during thermal treatment. The results support a radicalmediated transformation mechanism involving random-chain scission and end-chain scission, leading to the formation of perfluoroalkyl carboxylic acids such as perfluorooctanoic acid (PFOA) from certain polyfluoroalkyl amides and sulfonamides. Our results also support a direct thermal decomposition mechanism (chain stripping) on the nonfluorinated moiety of polyfluoroalkyl sulfonamides, resulting in the formation of perfluorooctanesulfonic acid (PFOS) and other structurally related polyfluoroalkyl compounds. Thermal decomposition of 8:2 fluorotelomer sulfonate occurred through end-chain scission and recombination reactions, successively yielding PFOS. All of the studied polyfluoroalkyl substances began to degrade at 200-300 degrees C, exhibiting near-complete decomposition at >= 400 degrees C. Using a high-resolution parent ion search method, we demonstrated for the first time that low-temperature thermal treatments of AFFF samples led to the generation of anionic fluoroalkyl substances, including perfluoroheptanesulfonamide, 8:2 fluorotelomer sulfonic acid, N-methyl perfluorooctane sulfonamide, and a previously unreported compound N-2-propenyl-perfluorohexylsulfonamide. This study provides key insights into the fate of polyfluoroalkyl substances in thermal processes.

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