Project Grant 2400068
- This Project Grant award of $370,480, provided by the National Science Foundation (NSF) under the Integrative Activities program (CFDA 47.083), supports research into single-atom catalysts (SACs) supported on transition metal carbides and nitrides for the aqueous-phase reforming of methanol to produce hydrogen as a clean fuel. The key objectives of the project are: 1) investigating the stability and electronic structure of SACs on various transition metal carbides and nitrides through...
- This National Science Foundation project grant of $728,692 supports research at the University of California, Los Angeles from September 2022 through August 2025 under the Engineering program (CFDA 47.041). The university will develop machine learning methods to model the dynamic structures of platinum and nickel nanoparticles containing 20 to 200 atoms and their effects on dehydrogenation and hydrogenolysis reactions. Researchers will generate accurate interatomic potentials using neural...
- This Project Grant from the National Science Foundation's Mathematical and Physical Sciences program provides $321,767 to the University of Central Florida Board of Trustees from July 15, 2022 to June 30, 2025. The award supports the development of sustainable methods for synthesizing transition metal compounds used as catalysts in chemical industry processes. Specifically, the grantee will utilize ultrasonic irradiation to generate catalysts in a single step using a fraction of the typical...
- This Project Grant award from the National Science Foundation (CFDA 47.049 - Mathematical and Physical Sciences) provides $643,347.00 to the University of Alabama-Tuscaloosa to develop computational tools that empower the design of efficient molecular catalysts. The key products and services to be delivered under this 5-year award include: Using high-performance computational screening to identify optimal catalyst structures, compositions, and kinetics to increase activity, selectivity, and...
- This National Science Foundation (NSF) grant under the Engineering (CFDA 47.041) program provides $625,184 to Virginia Polytechnic Institute & State University (Virginia Tech) to develop a design methodology for supported single-atom catalysts (SACs) - an emerging class of catalysts with exciting properties that can revolutionize industrial applications. The project embraces an integrated computational-experimental approach using machine learning to understand how the properties of the metal...
- 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...
- This $125,000 two-year project grant from the National Science Foundation Division of Chemical, Bioengineering, Environmental, and Transport Systems will support research and education activities under the Engineering program (CFDA 47.041). The University of Massachusetts Amherst, in collaboration with the University of Texas at El Paso, will establish an atomic-scale understanding of the interplay between structure, chemistry, catalytic activity, and mechanisms in transition metal...
- This Project Grant award from the National Science Foundation (CFDA 47.049 - Mathematical and Physical Sciences) provides $629,756 to support a collaborative research program led by Professors Simon M. Humphrey and Graeme Henkelman at the University of Texas at Austin. The project aims to discover and study new catalyst materials containing three or four different metallic species, with the goal of achieving advanced reactivity to convert bioethanol into hydrogen and methanol. The targeted...
- The National Science Foundation (NSF) awarded a $638,566 Project Grant under the Engineering program (CFDA 47.041) to the University of Delaware. The grant supports a collaborative research effort to develop a computational-experimental methodology using machine learning to design stable, active, and selective single-atom catalysts for industrial applications. The project aims to uncover physics-inspired descriptors to predict how the support material properties influence the stability,...
- 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...
UNDERSTANDING AND PREDICTING REACTIVITY AND SELECTIVITY OF SUPPORTED FEW ATOM CATALYSTS THROUGH CONTROL OF THEIR LOCAL ENVIRONMENT -WITH THE SUPPORT OF THE CHEMICAL CATALYSIS PROGRAM IN THE DIVISION OF CHEMISTRY, PROFESSOR RAHMAN OF UNIVERSITY OF CENTRAL FLORIDA, PROFESSOR LIU OF UNIVERSITY OF CALIFORNIA RIVERSIDE, AND PROFESSOR HONG OF BREWTON PARKER COLLEGE ARE STUDYING THE FUNDAMENTAL PROPERTIES OF SINGLY DISPERSED METAL-ATOM (PT, AG, CU, AND CO) CATALYSTS. THE WORK WILL PROVIDE A COMPREHENSIVE UNDERSTANDING OF FACTORS THAT CONTROL CATALYST ACTIVITY AND SELECTIVITY IN HYDROGEN PRODUCTION FROM METHANOL AND AMMONIA DECOMPOSITION. RATES AND FOR THESE REACTIONS WILL BE DETERMINED AND CORRELATED TO THE ELECTRONIC AND GEOMETRIC STRUCTURE OF THE LOCAL ATOMIC ENVIRONMENT OF THE SINGLE ATOM CATALYST. THIS SYSTEMIC COUPLING BETWEEN THEORY AND EXPERIMENT WILL EXPOSE REACTION MECHANISMS AND HELP SET GUIDELINES FOR THE RATIONAL DESIGN OF COST-EFFECTIVE CATALYSTS FOR THESE REACTIONS OF TECHNOLOGICAL IMPORTANCE. THE OUTCOME OF THE PROJECT IS EXPECTED TO IMPACT INDUSTRIAL METHODOLOGIES AND SOCIETY BROADLY THROUGH STRATEGIES FOR THE DEVELOPMENT OF COST-EFFECTIVE CATALYSTS AND THE TRAINING OF THE WORK FORCE TO ENABLE THESE TRANSFORMATIVE CHANGES IN CATALYST DESIGN. THE PIS WILL TRAIN STUDENTS IN INTERDISCIPLINARY RESEARCH. UCF BEING AN HIS IS IDEALLY SUITED FOR RECRUITMENT AND INTEGRATION OF DISADVANTAGED MINORITY INDIVIDUALS IN STEM FIELDS. THE TEAM WILL ALSO INVOLVE STUDENTS FROM BREWTON-PARKER COLLEGE (BPC), WITH A 46% POPULATION OF FIRST-GENERATION COLLEGE STUDENTS AND/OR FROM DISADVANTAGED GROUPS, AND WHO HAVE FEW RESEARCH OPPORTUNITIES. A SUMMER RESEARCH EXPERIENCES FOR UNDERGRADUATES (REU) PROGRAM WILL BE PROPOSED TO ATTRACT STUDENTS, PARTICULARLY THOSE FROM UNDERREPRESENTED MINORITY (URM) GROUPS. THE PI WILL LEVERAGE HER POSITION AS THE SITE LEADER FOR AMERICAN PHYSICAL SOCIETY BRIDGE PROGRAM TO RECRUIT URM GRADUATE STUDENTS TO WORK ON THE PROPOSED RESEARCH. EXISTING INTERNATIONAL COLLABORATIONS OF THE PIS WILL HELP EXTEND THE OUTCOMES OF THE PROPOSED WORK GLOBALLY. THE PIS WILL CONTINUE TO ENGAGE IN COMMUNITY-OUTREACH ACTIVITIES, MAKING USE ALSO OF THE INFRASTRUCTURE PROVIDED BY PHYSTEC (PHYSICS TEACHER EDUCATION COALITION) COMPREHENSIVE SITE AT UCF WHICH FACILITATES STRONG INTERACTIONS WITH K-12 STUDENTS AND TEACHERS IN THE GREATER ORLANDO AREA. THE PI WILL REACH OUT TO SIMILAR K-12 COMMUNITIES IN RIVERSIDE AND MOUNT VERNON. IN ADDITION TO A TIGHTLY COUPLED EFFORT IN EXPERIMENTS AND AB INITIO MODELING AND SIMULATION, WE ARE DEVELOPING MACHINE LEARNING POTENTIALS TO CARRY OUT EXTENDED SIMULATIONS UNDER EXPERIMENTAL CONDITIONS THAT FACILITATE A DEEP UNDERSTANDING OF REACTION MECHANISMS AS AFFECTED BY CATALYST DYNAMICAL TRANSFORMATIONS. RESEARCH COMPONENTS INCLUDE A TIGHT COUPLING AMONG THE FOLLOWING TASKS: 1) HIGH-THROUGHPUT SCREENING OF METAL AND OXIDE-SUPPORT COMBINATIONS OF CANDIDATE NANOCATALYSTS; 2) DETERMINATION OF STABILITY CRITERIA OF CANDIDATE NANOCATALYSTS VIA THERMODYNAMICS-ASSISTED, DENSITY FUNCTIONAL THEORY (DFT)-BASED PHASE DIAGRAM CALCULATIONS; 3) DEVELOPMENT OF DFT-ASSISTED ML POTENTIALS FOR CALCULATION OF X-RAY PHOTOELECTRON SPECTRA (XPS) AND X-RAY ABSORPTION SPECTRA (XAS) UNDER RELEVANT CONDITIONS; 4) SYNTHESIS OF PROPOSED NANOCATALYSTS; 5) APPLICATION OF SCANNING TRANSMISSION ELECTRON MICROSCOPY (STEM) AND XAS TO CONFIRM THE SINGLY-DISPERSED STATUS OF TARGETED SYSTEMS; 6) DETERMINATION OF REACTION RATES AND TURNOVER FREQUENCIES; 7) APPLICATION OF IN SITU DIFFUSE REFLECTANCE INFRARED FOURIER TRANSFORM SPECTROSCOPY (DRIFTS) FOR IDENTIFYING CATALYST STRUCTURE AND REVEALING REACTION MECHANISMS. WE USE A FEEDBACK LOOP BETWEEN THEORY AND EXPERIMENT TO OBTAIN AN UNDERSTANDING OF REACTION MECHANISMS AND INSIGHTS INTO FACTORS SUCH CHARGE TRANSFER, STRAIN, ETC. THAT CONTROL SITE ACTIVITY. THE PROJECT WILL THUS EXPOSE COMPETING REACTION PATHWAYS (AND REACTION INTERMEDIATES) RESPONSIBLE FOR PRODUCT SELECTIVITY, THEREBY PROVIDING DESIGN CONTROL. COMPARISON OF CALCULATED AND OBSERVED SURFACE STRUCTURE, REACTION RATES AND TURNOVER FREQUENCIES WILL VALIDATE THE THEORETICAL APPROACH AND REFINE EXPERIMENTAL PARAMETERS. THE IMMEDIATE OUTCOME WILL BE PARADIGM-SHIFTING STRATEGIES FOR PREDICTING AND CONTROLLING REACTIVITY OF ATOMICALLY DISPERSED CATALYSTS, AS A FUNCTION OF LOCAL COORDINATION ENVIRONMENT. 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 | $0 | 5/22/25 | ||
| Not listed | $770.0k | 7/9/24 |