Project Grant 2219832
- This three-year Project Grant from the National Science Foundation's Division of Chemical, Bioengineering, Environmental, and Transport Systems will support $249,710 in research at the University of Nevada, Reno to investigate thermal regeneration of granular activated carbon (GAC) laden with per- and polyfluoroalkyl substances (PFAS). PFAS are difficult to degrade and have emerged as priority pollutants found in drinking water. GAC sorption is the most efficient method for removing PFAS from...
- The National Science Foundation (NSF) awarded a $499,997 Project Grant under the Engineering program (CFDA 47.041) to the Regents of the University of Michigan to fund research aimed at advancing the use of persulfate and powdered activated carbon for in situ capture and destruction of per- and polyfluoroalkyl substances (PFAS) contaminating groundwater. The 3-year project will: 1) evaluate reaction kinetics for PFAS degradation using the persulfate/activated carbon treatment process, 2)...
- The National Science Foundation (NSF) awarded a $221,627 Project Grant under its Engineering program (CFDA 47.041) to the Regents of the University of Minnesota to conduct research on the transformation mechanisms and products of per- and polyfluoroalkyl substances (PFAS) during drinking water disinfection processes. The 3-year project, beginning August 1, 2024, will investigate how PFAS compounds react with common disinfectants like chlorine and ozone. This research aims to improve...
- This National Science Foundation (NSF) Engineering Program project grant, titled "ERASE-PFAS: UNDERSTANDING THE SURFACE-ACTIVE PROPERTIES OF PFAS FOR ENHANCED REMOVAL BY BUBBLING-ASSISTED WATER TREATMENT PROCESSES", aims to develop an air bubble-assisted water treatment process to efficiently capture and remove per- and polyfluoroalkyl substances (PFAS) from contaminated water. The $334,185 award to the New Jersey Institute of Technology (NJIT) will fund research to: 1) characterize...
- This two-year, $194,025 Project Grant from the National Science Foundation's Division of Chemical, Bioengineering, Environmental, and Transport Systems will fund the development of a low-cost, mass-scale sorbent for removing toxic per- and polyfluoroalkyl substances (PFAS) from drinking water. Montclair State University will design a fluorinated block copolymer sorbent that leverages self-assembly at solid-liquid interfaces to facilitate PFAS elimination. The porous polymer will be synthesized...
- This three-year project grant from the National Science Foundation's Geosciences program (CFDA 47.050) provides $254,618 to the Colorado School of Mines to conduct research towards understanding the atmospheric fate of per- and poly-fluorinated alkyl substances (PFAS). The research team will quantify thermodynamic properties influencing PFAS phase partitioning, estimate atmospheric lifetimes against hydroxyl radical chemistry through multiple oxidation flow reactor experiments, and develop...
- This National Science Foundation Project Grant of $312,596 awarded on October 1, 2022 will support research at San Diego State University to develop an innovative "trap and destroy" water treatment technology for per- and polyfluoroalkyl substances (PFAS). The university will work to optimize adsorptive photocatalysts that can selectively absorb PFAS from water and then destroy the compounds using ultraviolet or solar light. Key deliverables under the 24-month award include...
- This $419,463 Project Grant award from the National Science Foundation's Engineering program (CFDA 47.041) will support research by Georgia Tech Research Corporation to investigate enhanced electrochemical oxidation methods for the destruction of per- and polyfluoroalkyl substances (PFAS) in water. The project aims to systematically study the influence of electric field strength on PFAS electromigration and oxidative degradation, leveraging locally enhanced electric field treatment (LEEFT) to...
- This Project Grant award of $412,000 from the National Science Foundation (NSF) Engineering program (CFDA 47.041) will be used by the University of Massachusetts (UMass) to investigate the use of engineered polymer microparticles to adsorb and remove per- and polyfluoroalkyl substances (PFAS) from wastewater. The central hypothesis is that the adsorption of PFAS molecules will alter the interfacial properties of the microparticles, causing emulsions to destabilize and allowing for the capture...
- The National Science Foundation awarded a $583,500 Project Grant to the Colorado School of Mines under the Engineering federal grant program (CFDA 47.041). The grant will support research to evaluate hydrothermal liquefaction as a strategy for simultaneously destroying per- and polyfluoroalkyl substances (PFAS) in wastewater residual solids, while recovering energy and nutrients. Over three years, the Colorado School of Mines will conduct experiments to identify hydrothermal liquefaction process...
COLLABORATIVE RESEARCH: ERASE-PFAS: THERMAL REGENERATION OF PFAS-LADEN GRANULAR ACTIVATED CARBON PRESENTS AN OPPORTUNITY TO BREAK THE FOREVER PFAS CYCLE -PER- AND POLYFLUOROALKYL SUBSTANCES (PFAS) ARE FLUORINATED ORGANIC CHEMICALS THAT HAVE EMERGED AS PRIORITY POLLUTANTS DURING THE LAST TWO DECADES DUE TO INCREASING CONCERNS ABOUT THEIR PERSISTENCE, STABILITY, AND TOXICITY AS THEY ACCUMULATE IN THE ENVIRONMENT. THE DETECTION OF PFAS IN DRINKING WATER HAS RAISED SIGNIFICANT CONCERNS ABOUT THEIR IMPACT ON HUMAN HEALTH. PFAS ARE DIFFICULT TO DEGRADE AND DESTROY USING CONVENTIONAL WATER TREATMENT OXIDANTS (E.G., CHLORINE, OZONE, AND HYDROGEN PEROXIDE) DUE TO THEIR STRONG C-F COVALENT BONDS AND C-F BOND POLARIZATION WHICH CAUSES STERIC HINDRANCE TO CHEMICAL ATTACK. SORPTION ONTO GRANULAR ACTIVATED CARBON (GAC) FILTER BEDS HAS EMERGED AS THE MOST EFFICIENT AND COST-EFFECTIVE PROCESS FROM REMOVING PFAS FROM CONTAMINATED DRINKING WATER SOURCES. HOWEVER, SPENT PFAS-LADEN GAC FILTER BEDS NEED TO BE DISPOSED OF OR REGENERATED TO ENABLE THEIR REUSE. THE OVERARCHING GOAL OF THIS PROJECT IS TO INVESTIGATE THE VIABILITY OF THERMAL REGENERATION AS AN EFFICIENT AND COST-EFFECTIVE PROCESS TO ENABLE THE REUSE OF PFAS-LADEN GAC FILTER BEDS WHILE CATALYZING THE DEGRADATION AND DESTRUCTION OF THE SORBED PFAS CONTAMINANTS. TO ADVANCE THIS GOAL, THE PRINCIPAL INVESTIGATORS (PIS) PROPOSE TO TEST THE HYPOTHESIS THAT THE ABUNDANCE OF HIGHLY MOBILE ELECTRONS ON THE GRAPHITIC SURFACE OF ACTIVATED CARBON WILL CATALYZE THE THERMOLYSIS AND SUBSEQUENT DEGRADATION OF SORBED PFAS MOLECULES FROM SPENT GAC FILTER BEDS. THE SUCCESSFUL COMPLETION OF THIS RESEARCH WILL BENEFIT SOCIETY THROUGH THE GENERATION OF NEW FUNDAMENTAL KNOWLEDGE TO ADVANCE THE UTILIZATION OF GAC AS AN EFFICIENT AND COST-EFFECTIVE SORBENT FOR THE TREATMENT OF PFAS CONTAMINATED DRINKING WATER SOURCES. ADDITIONAL BENEFITS TO SOCIETY WILL BE ACCOMPLISHED THROUGH EDUCATION AND TRAINING INCLUDING THE MENTORING OF ONE GRADUATE AND ONE UNDERGRADUATE STUDENT AT THE UNIVERSITY OF MAINE AND ONE GRADUATE AND ONE UNDERGRADUATE STUDENT AT THE UNIVERSITY OF NEVADA, RENO. GRANULAR ACTIVATED CARBON (GAC) HAS BEEN DEMONSTRATED IN THE FIELD AND AT SCALE TO BE THE MOST EFFICIENT AND COST-EFFECTIVE SORBENT FROM REMOVING PFAS CONTAMINANTS FROM DRINKING WATER SOURCES INCLUDING PRETREATED SURFACE WATER AND GROUNDWATER. THERMAL REGENERATION IS AN ESTABLISHED PROCESS FOR THE REGENERATION OF SPENT PFAS-LADEN GAC BEDS. HOWEVER, A FUNDAMENTAL UNDERSTANDING OF THE MECHANISMS OF PFAS DEGRADATION, TRANSFORMATIONS, AND DESTRUCTION DURING THE THERMAL REGENERATION OF SPENT GAC FILTER BEDS HAS REMAINED ELUSIVE. THE GOAL OF THIS PROJECT IS TO ADVANCE THE FUNDAMENTAL UNDERSTANDING OF PFAS DEGRADATION, TRANSFORMATIONS, AND DESTRUCTION DURING THE THERMAL REGENERATION OF PFAS-LADEN GAC BEDS UNDER RELEVANT PROCESS AND FIELD CONDITIONS. THE SPECIFIC OBJECTIVES OF THE RESEARCH ARE TO: 1) INVESTIGATE THE EFFECT OF THERMAL REGENERATION ON THE PHYSICOCHEMICAL PROPERTIES OF COMMERCIALLY AVAILABLE AND WELL-CHARACTERIZED GAC PFAS SORBENT CANDIDATES; 2) EVALUATE THE IMPACTS OF HEATING RATE, REGENERATION TEMPERATURE, GASEOUS ATMOSPHERE, AND REACTIVATION AGENTS ON PFAS DEGRADATION/TRANSFORMATIONS AND GAC REGENERATION EFFICIENCY; 3) ASSESS THE IMPACT OF GAC PORE STRUCTURE AND SURFACE CHEMISTRY ON THE EXTENT AND RATE OF PFAS THERMOLYSIS; AND 4) CHARACTERIZE AND UNRAVEL THE DESORPTION, DECOMPOSITION, AND MINERALIZATION PATHWAYS OF SORBED PFAS DURING THE THERMAL REGENERATION OF PFAS-LADEN GAC BEDS. THE SUCCESSFUL COMPLETION OF THIS PROJECT HAS THE POTENTIAL FOR TRANSFORMATIVE IMPACT THROUGH THE GENERATION OF FUNDAMENTAL KNOWLEDGE AND PERFORMANCE DATA TO ADVANCE THE IMPLEMENTATION OF GAC SORPTION AS AN EFFICIENT, COST-EFFECTIVE, AND SUSTAINABLE PROCESS FOR THE TREATMENT OF PFAS CONTAMINATED DRINKING WATER SOURCES. TO IMPLEMENT THE EDUCATIONAL AND OUTREACH GOALS OF THIS PROJECT, THE PRINCIPAL INVESTIGATORS (PIS) PLAN TO INTEGRATE THE FINDINGS FROM THIS RESEARCH INTO EXISTING UNDERGRADUATE/GRADUATE COURSES AT THE UNIVERSITY OF MAINE AND THE UNIVERSITY OF NEVADA, RENO. IN ADDITION, THE PIS PROPOSE TO LEVERAGE EXISTING PROGRAMS AT THEIR RESPECTIVE INSTITUTIONS TO HOST A ?GIRLS SCOUTS? OUTREACH PROGRAM TO TEACH BASIC CONCEPTS OF ENVIRONMENTAL ENGINEERING AND WATER TREATMENT TO K-3 GRADE STUDENTS. THIS AWARD REFLECTS NSF'S STATUTORY MISSION AND HAS BEEN DEEMED WORTHY OF SUPPORT THROUGH EVALUATION USING THE FOUNDATION'S INTELLECTUAL MERIT AND BROADER IMPACTS REVIEW CRITERIA.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | ($110k) | 11/21/25 | ||
| Not listed | $250.0k | 8/22/22 |