Characterizing Volatile Emissions and Combustion Byproducts from Aqueous Film-Forming Foams Using Online Chemical Ionization Mass Spectrometry.
James M MattilaJonathan D KrugWilliam R RobersonR Preston BurnetteStella McDonaldLarry VirtarantaJohn H OffenbergWilliam P LinakPublished in: Environmental science & technology (2024)
Aqueous film-forming foams (AFFFs) are used in firefighting applications and often contain per- and polyfluoroalkyl substances (PFAS), which can detrimentally impact environmental and biological health. Incineration is a potential disposal method for AFFFs, which may produce secondary PFAS and other air pollutants. We used online chemical ionization mass spectrometry (CIMS) to measure volatile PFAS emissions from incinerating AFFF concentrate solutions. We quantified perfluorinated carboxylic acids (PFCAs) during the incineration of legacy and contemporary AFFFs. These included trifluoroacetic acid, which reached mg m -3 quantities in the incinerator exhaust. These PFCAs likely arose as products of incomplete combustion of AFFF fluorosurfactants with lower peak furnace temperatures yielding higher PFCA concentrations. We also detected other short-chain PFAS, and other novel chemical products in AFFF combustion emissions. The volatile headspace above AFFF solutions contained larger ( C ≥ 8), less oxidized PFAS detected by CIMS. We identified neutral PFAS resembling fluorotelomer surfactants (e.g., fluorotelomer sulfonamide alkylbetaines and fluorotelomer thioether amido sulfonates) and fluorotelomer alcohols in contemporary AFFF headspaces. Directly comparing the distinct chemical spaces of AFFF volatile headspace and combustion byproducts as measured by CIMS provides insight toward the chemistry of PFAS during thermal treatment of AFFFs.
Keyphrases
- municipal solid waste
- gas chromatography
- mass spectrometry
- tandem mass spectrometry
- sewage sludge
- gas chromatography mass spectrometry
- anaerobic digestion
- liquid chromatography
- drinking water
- health information
- solid phase extraction
- high resolution
- social media
- healthcare
- ionic liquid
- human health
- risk assessment
- public health
- room temperature
- mental health
- gold nanoparticles
- climate change
- ms ms