Project Grant 2400227
- The National Science Foundation (NSF) awarded a $320,000 Project Grant under its Mathematical and Physical Sciences (CFDA 47.049) program to Tufts University. This 3-year collaborative research project, led by principal investigators at Tufts University and Tulane University, aims to explore a novel class of dual-atom alloy catalysts for efficient and selective chemical conversions. Through a combination of computational modeling using machine learning and density functional theory, as well as...
- This three-year, $480,000 Project Grant from the National Science Foundation's Division of Chemistry and Mathematical and Physical Sciences program will support the development of sustainable catalysts and dehydrocoupling chemistry at Arizona State University. Principal Investigator Ryan J. Trovitch will study trends in earth-abundant metal catalysts to synthesize value-added chemicals and polymers more efficiently. Initial work will target precursors for semiconductor manufacturing. The project...
- This National Science Foundation (NSF) EAGER (Early-Concept Grants for Exploratory Research) grant, under the NSF Engineering program (CFDA 47.041), provides $166,000 to the New Jersey Institute of Technology (NJIT) to investigate the structural and electronic properties of a novel catalyst design consisting of palladium (Pd) single-atoms supported on carbon nanotubes with 8-member polynitrogen strands (Pd1-N8/CNT). This catalyst system has shown improved selectivity for the hydrogenation of...
- This federal Project Grant award from the National Science Foundation's Engineering program (CFDA 47.041) provides $374,552 to Tulane University to computationally design and experimentally validate single-atom alloy catalysts for oxidation and alkane conversion reactions. The overarching goal is to develop improved catalysts that can enhance process efficiency, economics, and reduce greenhouse gas emissions in the chemical industry. The project will employ computational screening and machine...
- This collaborative research project, funded by the National Science Foundation's (NSF) Division of Chemistry under the Mathematical and Physical Sciences program (CFDA 47.049), addresses critical challenges in catalyst durability and performance for industrial chemical processes. Led by Professor Ping Lu at Rowan University and Professor Cheng Zhang at Long Island University, the $314,880 award (obligated October 1, 2025) supports the design and development of nanofiber-encapsulated bimetallic...
- This three-year project grant from the National Science Foundation Division of Chemistry, under the Mathematical and Physical Sciences program (CFDA 47.049), provides $399,779 to Georgia Tech Research Corporation to support collaborative research on the structure, dynamics, and catalysis of dilute bimetallic and single atom alloy nanoparticles. The research team, led by David Flaherty of Georgia Tech along with collaborators from the University of Florida and Virginia Tech, will examine...
- This $600,000 Project Grant from the National Science Foundation Division of Chemistry, under the Mathematical and Physical Sciences program (CFDA 47.049), supports research at Northwestern University to develop new atom-efficient catalytic transformations using earth-abundant metals. Professor Tobin Marks and his research group will discover, understand, and optimize f-element and d(0)-transition metal catalysts for three types of critical organic reactions, with the goal of making catalytic...
- Through a $497,704 Project Grant award from the National Science Foundation's Chemical Catalysis program (CFDA 47.049 Mathematical and Physical Sciences), Professor Ming-Yu Ngai of Purdue University is conducting research to develop new sustainable catalytic processes leveraging first-row transition metals. The project aims to expand understanding of radical migration mechanisms and enable site- and stereoselective functionalization of carbohydrates and other small molecule building blocks....
- The National Science Foundation (NSF) awarded a $340,000 Project Grant under its Mathematical and Physical Sciences (CFDA 47.049) program to The Administrators of the Tulane Educational Fund, doing business as Tulane University. Researchers at Tulane University and Tufts University will perform computational and experimental investigations using quantum chemistry, machine learning, and atomic-scale characterization to identify and develop a novel class of "dual-atom alloy" catalysts....
- This Project Grant award from the National Science Foundation (NSF) Engineering program (CFDA 47.041) provides $238,249.00 to The Trustees Of The University Of Pennsylvania, doing business as Clinical Practices Of The University Of Pennsylvania. The project aims to develop a design methodology for supported single-atom catalysts (SACs) - an emerging class of catalysts that can revolutionize industrial applications but whose stability and properties are not well understood. The research will...
CAS: DESIGNING COPPER-BASED MULTI-METALLIC SINGLE-ATOM ALLOYS FOR CROSS COUPLING REACTIONS THROUGH COMBINED SURFACE SCIENCE AND CATALYTIC INVESTIGATIONS -WITH THE SUPPORT OF THE CHEMICAL CATALYSIS PROGRAM IN THE DIVISION OF CHEMISTRY, NATHANIEL EAGAN AND CHARLES SYKES OF TUFTS UNIVERSITY ARE STUDYING THE CATALYTIC BEHAVIOR OF NOVEL CATALYSTS COMPRISING TRACE AMOUNTS OF TWO DOPANT METALS PRESENT AS SINGLE ATOMS, EMBEDDED IN THE SURFACE OF A THIRD HOST METAL. THE TEAM WILL COMBINE MACROSCOPIC-SCALE STUDIES OF ACTUAL CATALYSTS WITH ATOMIC-SCALE STUDIES OF SINGLE-CRYSTAL MODELS. THE NOVEL CATALYSTS CONSIST OF TWO DIFFERENT METALS, ISOLATED AS SINGLE ATOMS, ON A THIRD METAL, A COMPOSITION REFERRED TO AS ?TRIMETALLIC SINGLE-ATOM ALLOYS.? PRIOR STUDIES WITH BIMETALLIC SINGLE-ATOM ALLOYS, E.G., TWO METALS, HAVE SHOWN THAT THE ISOLATED ATOMS DRIVE UNIQUELY EFFICIENT AND SELECTIVE CATALYSIS OF MANY IMPORTANT CHEMICAL TRANSFORMATIONS. BY ADDING A THIRD METAL, EAGAN AND SYKES AIM TO PERFORM MORE CHALLENGING CHEMISTRIES, SUCH AS CARBON-CARBON COUPLING REACTIONS CRUCIAL TO A WIDE RANGE OF CHEMICAL SYNTHESES. DR. EAGAN AND HIS STUDENTS WILL SYNTHESIZE TRIMETALLIC SINGLE-ATOM ALLOY CATALYSTS, CHARACTERIZE THEIR STRUCTURES USING A WIDE RANGE OF ANALYTICAL TECHNIQUES, AND EXAMINE THEIR CATALYTIC BEHAVIORS IN LABORATORY-SCALE CHEMICAL REACTORS. DR. SYKES AND HIS STUDENTS WILL SYNTHESIZE THE SINGLE-CRYSTAL MODELS AND INVESTIGATE THEM USING ULTRA-HIGH VACUUM TECHNIQUES TO PROBE STRUCTURES AT THE ATOMISTIC LEVEL AND CORRELATE THEM WITH CATALYTIC PROPERTIES. THIS PROJECT AIMS TO PROVIDE FUNDAMENTAL NEW KNOWLEDGE FROM WHICH A WIDE RANGE OF TRIMETALLIC SINGLE-ATOM ALLOYS COULD BE PRODUCED AND IMPLEMENTED IN CATALYST SYNTHESES. THIS PROJECT WILL ALSO SUPPORT EFFORTS TO CONNECT THE CHEMISTRY AND CHEMICAL ENGINEERING DISCIPLINES AT BOTH THE K-12 AND UNIVERSITY LEVELS THROUGH THE DEVELOPMENT OF NANOSCIENCE ACTIVITIES AND UNIVERSITY COURSES. TRIMETALLIC SINGLE-ATOM ALLOYS ARE DESIGNED TO LEVERAGE THE UNIQUE CHEMISTRIES EXHIBITED BY DISTINCT ISOLATED METAL ATOMS EMBEDDED WITHIN LOW-REACTIVITY, HIGH-SELECTIVITY COINAGE METAL HOSTS IN TANDEM CATALYSIS ON A SINGLE CATALYTIC SURFACE. THESE SYSTEMS BALANCE THE DIVERSE NEEDS OF COMPLEX SURFACE REACTIONS WHICH POSSESS ELEMENTARY STEPS WITH VASTLY DIFFERING CATALYTIC REQUIREMENTS, AS IS THE CASE FOR MANY CARBON-CARBON COUPLING REACTIONS. EAGAN AND SYKES WILL INVESTIGATE MECHANISMS BY WHICH SPILLOVER OF CHEMICAL INTERMEDIATES BETWEEN DISTINCT DOPANT ATOMS ENABLES THEM TO COOPERATIVELY ACT ON DIFFERENT PARTS OF A CATALYTIC CYCLE AND DRIVE A WIDER RANGE OF CHEMISTRIES THAN WOULD BE AVAILABLE FROM BIMETALLIC SINGLE-ATOM ALLOYS. SURFACE SCIENCE STUDIES PERFORMED BY SYKES WILL PROVIDE DETAILS OF THE GEOMETRIC AND ELECTRONIC STRUCTURES OF THESE MATERIALS WITH ATOMIC RESOLUTION AS WELL AS QUANTIFICATION OF THE KINETICS OF ELEMENTARY REACTION STEPS. EAGAN WILL BRIDGE THESE STUDIES TO MORE INDUSTRIALLY RELEVANT CONDITIONS IN CATALYTIC REACTORS THROUGH MICROKINETIC MODELING AND REACTOR STUDIES WITH CATALYSTS SYNTHESIZED USING WELL-CONTROLLED COLLOIDAL METHODS. UNDERSTANDING THE DYNAMIC STRUCTURES OF THESE MATERIALS IN THE TWO ENVIRONMENTS, AND SITUATIONS IN WHICH THEY DO AND DO NOT AFFECT EACH OTHER, ARE EMBEDDED TARGETS OF THESE STUDIES. THIS COLLABORATIVE WORK AIMS TO UNDERSTAND AND BRIDGE THE MATERIALS, PRESSURE, AND TEMPERATURE GAPS THAT EXIST BETWEEN OUR SURFACE SCIENCE AND CATALYTIC REACTOR APPROACHES THEREBY GENERATING FUNDAMENTAL NEW INSIGHTS AND METHODOLOGIES TO ADVANCE THE DEVELOPMENT OF THIS NOVEL CLASS OF TRIMETALLIC SINGLE-ATOM ALLOY CATALYSTS. 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 | $201.0k | 9/9/24 | ||
| Not listed | $397.9k | 3/22/24 |