Project Grant 2522615
- This Project Grant award from the National Science Foundation's Engineering program (CFDA 47.041) provides $737,310 to the University of Massachusetts to develop advanced synthetic membranes that can selectively separate specific molecules. The project aims to create membranes that mimic the selectivity and efficiency of biological membranes, without relying on toxic manufacturing processes. The research will combine materials synthesis, molecular simulation, and machine learning to design novel...
- This Project Grant award, titled "DMREF: COLLABORATIVE RESEARCH: ENGINEERING SELECTIVE MEMBRANES FROM LIPID-POLYELECTROLYTE COMPLEXES", is funded by the National Science Foundation (NSF) under the Mathematical and Physical Sciences (CFDA 47.049) program. The $138,938 award will support research at the University of Illinois to develop innovative synthetic membranes that leverage components from biological membranes. The goal is to create highly selective, energy-efficient membranes for...
- This $255,638 Project Grant award from the National Science Foundation's Engineering program (CFDA 47.041) will support a collaborative research project to elucidate the role of ion dehydration in regulating the transport and selectivity of monovalent ions in polyamide nanofiltration (NF) membranes. The overarching goal is to explore a novel ion dehydration mechanism that can enable challenging separations, such as the extraction of lithium from brines, beyond the capabilities of current NF...
- This Project Grant from the National Science Foundation Division of Chemical, Bioengineering, Environmental, and Transport Systems Engineering Directorate provides $419,999 to Rice University from October 1, 2022 to August 31, 2025. The funding supports research to develop synthetic membranes for filtering per- and polyfluoroalkyl substances (PFAS) from water to below 70 parts-per-trillion, as well as education and training. Specifically, the awardee will design recognition sites for anionic...
- This $386,034 National Science Foundation project grant supports the development of chemically resilient, fouling resistant polymer membranes for water separation applications. Funded under the Engineering program (CFDA 47.041), the 24-month award to the University of Massachusetts Amherst enables fundamental research to manufacture porous polymer membranes using an all-aqueous process that eliminates toxic solvents currently used. The research aims to (1) develop a mechanistic understanding...
- This $460,149 Project Grant awarded by the National Science Foundation's (NSF) Division of Materials Research supports research to develop photoswitchable lipid bilayer membranes that can mimic the functions of living cell membranes. The 3-year project, awarded on September 1, 2025, aims to fabricate these synthetic membranes, excite them with light, and use optical microscopy to observe their shape, permeability, elasticity, and other properties. The goal is to create artificial cells with...
- The National Science Foundation (NSF) awarded a $390,000 Project Grant under the Engineering program (CFDA 47.041) to The Leland Stanford Junior University. The goal of this 4-year award is to develop new organic-inorganic hybrid membrane materials that can effectively separate chemical mixtures, with a focus on separating paraffins and olefins - molecules critical for producing fuels and plastics. The research team will combine advanced data science and high-throughput physical...
- This Project Grant award from the National Science Foundation's Engineering program (CFDA 47.041) provides $469,833 to the University of Florida to develop two-dimensional polymer membranes with precisely engineered gas-selective nanocavities. The goal is to create an energy-efficient, cost-competitive solution for separating gas molecules in industrial applications like carbon dioxide capture and petrochemical purification. The research will focus on designing macrocycle-based membranes that...
- This federal Project Grant award of $375,299, provided by the National Science Foundation's (NSF) Division of Materials Research under the CFDA 47.049 Mathematical and Physical Sciences program, supports research to advance the understanding of nanostructure, ion affinity, and mobility in polymer membranes. The research aims to enable the design of improved polymer membranes for sustainable applications such as reverse osmosis water purification, chemical flow batteries, and lithium recovery....
- This National Science Foundation (NSF) Engineering program (CFDA 47.041) federal Project Grant award totaling $269,097 is for a collaborative research project titled "Beyond Fluorine: Molecular-Level Understanding of the Effect of Bromination and Chlorination on Polymer Membrane Transport Property and Long-Term Stability". The research aims to develop a deeper understanding of how halogenation, specifically chlorination and bromination, can enhance the selectivity and long-term...
DMREF: COLLABORATIVE RESEARCH: ENGINEERING SELECTIVE MEMBRANES FROM LIPID-POLYELECTROLYTE COMPLEXES -SYNTHETIC MEMBRANES FACILITATE THE SELECTIVE SEPARATION OF SPECIFIC MOLECULES FROM MIXTURES. FOR EXAMPLE, MEMBRANES ENABLE THE PRODUCTION OF CLEAN WATER AND SAFE PHARMACEUTICALS. UNFORTUNATELY, THE INDUSTRIAL MANUFACTURING PROCESS USED TO PRODUCE MEMBRANES RELIES ON THE USE OF TOXIC SOLVENTS. IN CONTRAST, BIOLOGICAL MEMBRANES LEVERAGE COMPONENTS THAT SELF-ASSEMBLE TO CREATE MULTI-SCALE AND HIERARCHICAL BARRIERS THAT MAINTAIN UNPRECEDENTED SELECTIVITY, CONTROLLING WHAT AND WHEN MOLECULES ENTER AND EXIT CELLS. THIS DESIGNING MATERIALS TO REVOLUTIONIZE AND ENGINEER OUR FUTURE (DMREF) PROJECT SEEKS TO HARNESS BIOLOGY-LIKE PERFORMANCE AND THE CHEMICAL VERSATILITY OF SYNTHETIC POLYMERS. THIS LOOKS TO BE ACHIEVED BY MIXING LIPIDS, WHICH ARE THE BUILDING BLOCKS OF BIOLOGICAL MEMBRANES, WITH CHARGED POLYMERS THAT CAN BE SYNTHESIZED TO EXHIBIT SPECIFIC CHEMISTRIES OR CHARGE PATTERNS. THESE MIXTURES WILL SPONTANEOUSLY FORM NANOSCALE, ORDERED STRUCTURES, THAT CAN FORM THE BASIS FOR HIGH-PRECISION MEMBRANES. A MAJOR CHALLENGE IS TO DESIGN BOTH LIPIDS AND POLYMERS, WHICH CAN HAVE COUNTLESS VARIATIONS OF CHEMICAL AND PHYSICAL FEATURES, TO YIELD MEMBRANES FOR A GIVEN APPLICATION. THIS PROJECT ALIGNS WITH DMREF AND THE MATERIALS GENOME INITIATIVE BY COMBINING MATERIALS SYNTHESIS AND CHARACTERIZATION WITH MULTI-SCALE MOLECULAR SIMULATION AND MACHINE LEARNING AS THE EXPERIMENTS WILL INFORM NEW COMPUTATIONAL MODELS, WHICH WILL THEN BE USED TO EXPEDITE MATERIALS DISCOVERY TO DESIGN NEW MEMBRANES. THIS INTERDISCIPLINARY EFFORT WILL BRING TOGETHER ACADEMIC RESEARCHERS AND SCIENTISTS FROM THE AIR FORCE RESEARCH LABORATORY (AFRL) WHO HAVE COMBINED EXPERTISE REGARDING THE MAKING AND CHARACTERIZATION OF MEMBRANES, MOLECULAR SIMULATION AND MACHINE LEARNING, AND THE PHYSICS OF LIPID ASSEMBLY. THE EFFORT LOOKS TO HARNESS NANOSCALE STRUCTURE TO ACHIEVE SEPARATIONS CAPABILITIES SEEN IN BIOLOGY, WHICH WILL BENEFIT SOCIETY AND THE US BY ESTABLISHING A VERSATILE CLASS OF MEMBRANES WITH BROAD APPLICATIONS IN BIOLOGICAL, CHEMICAL, AGRICULTURAL, AND INDUSTRIAL SEPARATIONS. THE RESEARCH WILL ALSO INVOLVE THE INTERDISCIPLINARY TRAINING OF RESEARCHERS WITH BROAD EXPERTISE SPANNING CHEMISTRY, ENGINEERING, AND PHYSICS, VIA BOTH STUDENT MENTORSHIP AND EDUCATIONAL OUTREACH TO K-12 STUDENTS. THIS PROJECT SEEKS TO ESTABLISH RATIONAL DESIGN OF CO-ASSEMBLING LIPIDS AND POLYELECTROLYTES, USING PATTERNED POLYELECTROLYTES AND JUDICIOUS CHOICE OF CHEMICAL FEATURES TO TARGET SPECIFIC NANOSTRUCTURES THAT CAN BE USED IN SEPARATION MEMBRANES. THIS EFFORT LOOKS TO HARNESS EXPERTISE IN POLYMER AND LIPID CHARACTERIZATION AND SYNTHESIS, USING SEQUENCE-DEFINED POLYELECTROLYTES TO MODULATE NANO-SCALE ASSEMBLY THAT WILL BE EVALUATED BY SCATTERING. THIS WILL BE COUPLED WITH A MULTI-SCALE MODELING EFFORT THAT CONNECTS ATOMISTIC SIMULATIONS WITH COARSE-GRAINED MODELS AND POLYMER FIELD THEORY TO YIELD PREDICTIONS OF CHARGE-DRIVEN ASSEMBLY. PHYSICAL INSIGHTS FROM THIS COMBINED EXPERIMENTAL AND MODELING APPROACH INTEND TO INFORM MACHINE LEARNING TOOLS TO PREDICT STRUCTURES RELEVANT FOR SEPARATION MEMBRANES, WHICH WILL BE TESTED EXPERIMENTALLY. THE OVERARCHING GOAL IS TO ESTABLISH A VERSATILE MOLECULAR DESIGN PROTOCOL CAPABLE OF INTEGRATING BIOINSPIRED LIPID-BASED ASSEMBLIES WITH COMPLEX-FORMING POLYMERS TO RATIONALLY ENGINEER PERMEABLE MEMBRANES WITH DESIRED SELECTIVITY. 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.- SUBAWARDS ARE NOT PLANNED FOR THIS AWARD.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $54.7k | 8/18/25 |