Project Grant 2326720

Award Date 1/1/24
Completion Date 4/30/25
Dollars Obligated $10K
Funding Federal Agency
National Science Foundation
Federal Grant Program
47.041
Assistance Type
Project Grant
Place of Performance
Baltimore, MD 21218, USA
Similar Awards
This National Science Foundation (NSF) Project Grant award under the Engineering (CFDA 47.041) program provides $439,600 to The Trustees of the University of Pennsylvania to research modulating water activity to promote the electrochemical conversion of carbon dioxide (CO2) into multi-carbon products. The project aims to understand how adjusting the salt concentration in water can enhance the selective production of C2+ chemicals and fuels from CO2, offering a pathway towards a sustainable...
This $300,000 project grant from the National Science Foundation's (NSF) Integrative Activities (CFDA 47.083) program aims to advance electrocatalytic technologies for capturing and converting carbon dioxide (CO2) into valuable fuels like methane and ethylene. The award to Clemson University's Division of Research will fund research to utilize captured (bi)carbonate ions rather than pure CO2 gas as the feedstock for the electrochemical reduction process. This approach seeks to improve the energy...
This Project Grant award from the National Science Foundation (NSF) under the Engineering program (CFDA 47.041) provides $350,000 to William Marsh Rice University to research strategies for mitigating salt buildup in carbon dioxide reduction (CO2RR) electrolyzers. The project aims to develop a fundamental understanding of the mechanisms governing salt migration and formation in CO2RR electrolyzers, and to devise effective methods for salt removal to enhance the long-term stability and...
The National Science Foundation (NSF) awarded a $528,664 Project Grant to the University of California, Los Angeles (UCLA) through the NSF Engineering program (CFDA 47.041) to conduct fundamental research on the thermodynamics and reaction-transport kinetics of copper-based catalysts for electrochemical transformation of carbon dioxide (CO2) into fuels and chemicals. The 5-year research project aims to develop a novel reaction-transport model for CO2 electrocatalysis that can enable the rational...
This $150,000 federal grant award from the National Science Foundation (NSF) Integrative Activities program (CFDA 47.083) supports collaborative research between Brown University and the University of Connecticut to develop an innovative system for direct air capture and electrochemical conversion of CO2 to ethanol and other liquid fuels. The project aims to create a novel cellulose-based membrane system integrated with cobalt nanosheet catalysts on graphene to efficiently capture CO2 from air...
This $1,700,000 Project Grant award from the National Science Foundation's (NSF) Engineering program (CFDA 47.041) will support research to develop a bioelectrochemical process to capture and recycle carbon dioxide (CO2) into high-value chemicals using microbes. The project aims to create a circular economy by transforming CO2 into acetic acid, which will then be used as a feedstock for engineered Escherichia coli strains to produce sustainable biomaterials. Key activities include developing...
The National Science Foundation awarded a $406,228 project grant to The Johns Hopkins University under the Engineering program (CFDA 47.041) for research on electrochemically mediated carbon dioxide separation via non-aqueous proton-coupled electron transfer. The five-year project beginning July 2023 aims to develop an electrochemical interface composed of redox-tunable Brønsted base moieties that can undergo proton-coupled electron transfer in non-aqueous electrolytes for the reversible...
This $538,791 Project Grant awarded by the National Science Foundation's (NSF) Engineering program (CFDA 47.041) aims to develop novel electrochemical catalysts and processes for the conversion of bio-derived carboxylic acids, such as lactic acid, into alcohols like propylene glycol. The project explores the hypothesis that electrochemically-generated surface hydrides can cooperate with Lewis acid catalysts to selectively reduce carboxylic acids, an approach that could enable the production of...
This federal Project Grant award of $454,577 from the National Science Foundation's (NSF) Engineering program (CFDA 47.041) aims to develop a novel gas diffusion electrode (GDE) that is super-repellent to low surface tension fluids. The research seeks to enable a generalized porous cathode platform for gaseous reactant flow electrolysis without flooding, which can be applied to nearly any non-aqueous solvent. The key objectives are to design microstructures with high aspect ratio and overhanging...
This $990,754 Project Grant award from the National Science Foundation (NSF) Engineering program (CFDA 47.041) supports research at Arizona State University to advance the science and technology of converting carbon dioxide into biofuels. The key products and services to be delivered include: Developing a fundamental understanding of how nanomaterial-based photocatalysts can be used to efficiently reduce CO2 into carbon monoxide, which can then be converted into longer-chain biofuel compounds by...

MODULATING H2O ACTIVITY PROMOTES CO2 REDUCTION TO MULTI-CARBON PRODUCTS -ELECTROCHEMISTRY ? DRIVEN BY SUSTAINABLE OR RENEWABLE ELECTRICAL ENERGY GENERATED BY WIND OR SOLAR ENERGY ? OFFERS A PATH TOWARD A SUSTAINABLE, CIRCULAR CARBON ECONOMY, THEREBY REDUCING OUR RELIANCE ON FOSSIL FUELS AND MITIGATING THE IMPACTS OF CLIMATE CHANGE. TO THAT END, THE PROJECT FOCUSES ON TRANSFORMING CARBON DIOXIDE (CO2), A MAJOR GREENHOUSE GAS, INTO VALUE-ADDED CHEMICALS AND FUELS. THE NOVELTY OF THE PROJECT LIES IN UNDERSTANDING THE ROLE OF WATER IN THE ELECTROCHEMICAL REACTIONS THAT CONVERT CO2 EFFICIENTLY AND SELECTIVELY TO MULTI-CARBON HYDROCARBON CHEMICALS FOR USE AS BUILDING-BLOCKS FOR A BROAD RANGE OF PRODUCTS INCLUDING FUELS, PLASTICS, COATINGS, AND CONSTRUCTION PRODUCTS. BY VARYING THE CONCENTRATION OF SALT IN A SOLUTION, THE CHEMICAL ACTIVITY OF WATER (H2O) CAN BE ALTERED, POTENTIALLY ENABLING GREATER CONTROL OVER THE REACTION OF CO2 WITH H2O TO PRODUCE THE DESIRED MULTI-CARBON PRODUCTS. BEYOND THE TECHNICAL ASPECTS, THE PROJECT OFFERS EDUCATIONAL AND TRAINING OPPORTUNITIES IN STEM AREAS, ESPECIALLY FOCUSED ON SOCIOECONOMICALLY DISADVANTAGED STUDENTS. THE PROJECT INVESTIGATES THE ROLE OF H2O IN MODULATING THE ELECTROCATALYTIC CO2 REDUCTION REACTION (CO2RR) TO FAVOR EFFICIENT AND SELECTIVE FORMATION OF C2+ PRODUCTS. PRELIMINARY DATA FROM THE INVESTIGATOR?S LABORATORY HAS SHOWN THAT LOWERING THE WATER ACTIVITY FAVORS THE GENERATION OF MULTI-CARBON PRODUCTS. BY ADJUSTING THE SALT CONCENTRATIONS WITHIN A RANGE OF 0.1 TO > 10 MOLAL IN THE WATER THE INVESTIGATORS HAVE SUCCESSFULLY ALTERED THE ACTIVITY OF WATER IN THE SOLUTION, WHICH, IN TURN, ENHANCES THE PRODUCTION OF C2 PRODUCTS OVER THEIR C1 COUNTERPARTS. THREE SPECIFIC PROJECT THRUSTS WILL BE PURSUED TO UNDERSTAND THE ORIGIN OF IMPROVED ELECTROCHEMICAL REDUCTION OF CO2 TO C2 OR C2+ PRODUCTS WITH DECREASED WATER ACTIVITY, NAMELY: 1) OPTIMIZE SOLUTION COMPOSITION BY SIMULTANEOUSLY VARYING THE CATION, ANION, AND WATER ACTIVITY FOR IMPROVED CO2-TO-MULTICARBON FUELS ON CU ELECTRODES, 2) INTERROGATE THE ROLE OF THE ELECTROLYTE STRUCTURE IN MODULATING CATALYSIS WITH SURFACE-ENHANCED IN-SITU INFRARED ABSORPTION SPECTROSCOPY (SEIRAS); AND 3) EXPLORE ELECTROLYTE ENGINEERING TO BOOST CO2 REDUCTION TO MULTI-CARBON ALCOHOLS ON CU-ALLOY CATALYSTS. BROADER EDUCATIONAL AND OUTREACH ASPECTS OF THE PROJECT WILL INTRODUCE SOCIOECONOMICALLY DISADVANTAGED STUDENTS TO CONCEPTS OF RENEWABLE ENERGY RESEARCH. SPECIFICALLY, THE INVESTIGATOR, ALONG WITH A POST-DOCTORAL ASSOCIATE AND UNDERGRADUATE STUDENT, WILL PARTICIPATE IN THE ENGINEERING INNOVATION PROGRAM (EIP) AT JOHNS HOPKINS UNIVERSITY. STUDENTS WILL CONDUCT STRAIGHTFORWARD HANDS-ON EXPERIMENTS TO ACQUAINT THEM WITH FUNDAMENTAL RENEWABLE ENERGY CONCEPTS, WITH THE GOAL OF PIQUING THEIR INTEREST IN STEM AREAS AS RELATED TO EDUCATIONAL AND CAREER PATHS SUPPORTING GREENHOUSE GAS REDUCTION AND MITIGATION OF ENVIRONMENTAL IMPACTS. 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.

Posted 8/4/23, 12:00 AM