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Characterization and Application of Passive Samplers for Monitoring of Pesticides in Water
Published on: August 3, 2016
A graphene-based hydrogel monolith with tailored surface chemistry for PFAS passive sampling
Jitka Becanova1, Zachary S S L Saleeba2, Aidan Stone2
1Graduate School of Oceanography, University of Rhode Island, Narragansett, RI, United States.
A novel graphene hydrogel monolith was developed as a passive sampler for detecting per- and polyfluorinated alkyl substances (PFAS) in water. This new tool effectively monitors PFAS at low concentrations, aiding environmental and health assessments.
Area of Science:
- Environmental Science
- Materials Science
- Analytical Chemistry
Background:
- Aquatic contamination by per- and polyfluorinated alkyl substances (PFAS) is a global concern due to environmental persistence and health risks.
- Current regulatory limits necessitate PFAS detection in the parts per trillion (ppt) range, demanding sensitive monitoring tools.
- Passive sampling offers a reliable method for monitoring persistent organic pollutants, but suitable tools for PFAS are needed.
Purpose of the Study:
- To develop and characterize a novel graphene-based hydrogel monolith for use as a passive sampler for PFAS.
- To evaluate the performance of the graphene monolith in detecting a wide range of PFAS in aquatic environments.
Main Methods:
- Graphene oxide (GO) dispersions were hydrothermally treated to self-assemble free-standing graphene hydrogel monoliths.
- The as-produced monoliths were tested for PFAS uptake, and equilibrium partition coefficients (KSW) were determined.
- Chemical modification using a diazonium-based grafting reaction introduced positive surface charge to enhance short-chain PFAS sorption.
Main Results:
- The graphene monoliths demonstrated effective sorption for longer-chain perfluoroalkyl acids (PFAA) and neutral precursors (log KSW range 1.9 - 3.6).
- Chemical modification significantly increased the sorption of short and middle-chain PFAA by tenfold (e.g., PFBA log KSW increased from 1.3 to 2.2).
- Field deployments in the Delaware River confirmed the monoliths' capability to detect key PFAS at relevant environmental concentrations.
Conclusions:
- The developed graphene-based hydrogel monolith serves as a promising passive sampling tool for PFAS monitoring.
- Chemical functionalization enhances the sampler's efficacy for a broader spectrum of PFAS, including challenging short-chain compounds.
- This technology offers a reliable and sensitive method for assessing aquatic PFAS contamination, supporting regulatory compliance and environmental protection.
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