Project Grant 2522656
- This Project Grant award, funded by the National Science Foundation's (NSF) Mathematical and Physical Sciences program (CFDA 47.049), aims to establish a transformative framework for "metastability engineering" in refractory multi-principal element alloys (RMPEAs). The $107,900 award to the University of Oklahoma will support research to simultaneously achieve high-temperature strength and enhanced room-temperature ductility in this new class of metallic materials. The project...
- This $112,988 Project Grant awarded by the National Science Foundation's Mathematical and Physical Sciences program (CFDA 47.049) aims to establish a transformative framework for "metastability engineering" in refractory multi-principal element alloys (RMPEAs). The research focuses on developing new alloy design methods that can achieve both high-temperature strength and improved room-temperature ductility and strain hardenability in this class of materials. The project, led by Clemson...
- The National Science Foundation (NSF) awarded a $260,436 project grant under the Engineering program (CFDA 47.041) to the University of Wisconsin - Madison to establish a transformative framework for "metastability engineering" in refractory multi-principal element alloys (RMPEAs). This collaborative research project, conducted in partnership with the Department of Science and Technology of India, aims to develop novel structural alloys that achieve high strength at high temperatures...
- This National Science Foundation (NSF) project grant award of $400,000, titled "COLLABORATIVE RESEARCH: DMREF: TOPOLOGICALLY DESIGNED AND RESILIENT ULTRAHIGH TEMPERATURE CERAMICS," aims to develop a new method to simultaneously improve both the low temperature and high temperature properties of ultra-high temperature ceramic materials. The project will utilize a combination of computational tools, including first principles and machine learning, integrated with experimental methods...
- This National Science Foundation (NSF) Designing Materials to Revolutionize and Engineer our Future (DMREF) Project Grant award, valued at $150,000 and running from October 1, 2023 to September 30, 2027, supports collaborative research to develop simulation-informed models for additive manufacturing of amorphous metals. The research team at The Washington University aims to derive meaningful measures of material structure from electron nanodiffraction and simulation data, and build predictive...
- This Project Grant award, titled "COLLABORATIVE RESEARCH: DMREF: OP: MULTI-SCALE ENGINEERED METAMATERIALS APPROACHING FUNDAMENTAL LIMITS OF LINEAR AND NONLINEAR SUSCEPTIBILITIES", was provided by the National Science Foundation (NSF) under the Mathematical and Physical Sciences Federal Grant Program (CFDA 47.049). The $500,000 award aims to design a new class of engineered metamaterials with advanced optical properties, such as high refractive index and nonlinear optical...
- The National Science Foundation (NSF) has awarded a $398,131 Project Grant under the Mathematical and Physical Sciences program (CFDA 47.049) to Northwestern University to conduct the "COLLABORATIVE RESEARCH: DMREF: ACCELERATED DESIGN, DISCOVERY, AND DEPLOYMENT OF ELECTRONIC PHASE TRANSITIONS (ADEPT)" project. This interdisciplinary research endeavor aims to accelerate the discovery, development, and deployment of advanced insulator-metal transition (IMT) materials to enable novel...
- This $524,534 Project Grant award from the National Science Foundation (NSF) Division of Materials Research funds a collaborative research effort between The Johns Hopkins University and the University of California, Santa Barbara to elucidate high temperature deformation mechanisms in refractory multi-principal-element alloys. The research aims to develop a fundamental scientific understanding of the ultrahigh temperature (up to 1500°C) mechanical behavior of this new class of alloy...
- The National Science Foundation (NSF) awarded a $75,000 Project Grant under the Engineering (CFDA 47.041) program to the University of California, Santa Barbara (UCSB) to support a collaborative research project titled "DMREF: Data-Driven Discovery of the Processing Genome for Heterogeneous Superalloy Microstructures." The project aims to revolutionize the creation of novel engineering alloys by developing a data-driven platform called "DRAGONS" (Data-Driven Recursive...
- This Project Grant awarded by the National Science Foundation (CFDA 47.049 - Mathematical and Physical Sciences) provides $340,000 to the University of Nebraska for a 4-year collaborative research project on "DMREF: NSF-BSF: Moire-Engineered Oxide Membrane Heterostructures by Design". The project aims to design, create, and understand novel electronic, magnetic, and structural phases emerging in free-standing oxide membranes assembled into twisted heterostructures. The research...
COLLABORATIVE RESEARCH: DMREF: NSF-DST: METASTABILITY ENGINEERING IN REFRACTORY MULTI-PRINCIPAL ELEMENT ALLOYS -THIS DESIGNING MATERIALS TO REVOLUTIONIZE AND ENGINEER OUR FUTURE (DMREF) JOINT NSF-DEPARTMENT OF SCIENCE AND TECHNOLOGY OF INDIA (NSF-DST) PROJECT AIMS TO ESTABLISH A TRANSFORMATIVE FRAMEWORK FOR THE DEVELOPMENT OF STRUCTURAL ALLOYS THAT SIMULTANEOUSLY ACHIEVE HIGH STRENGTH AT HIGH TEMPERATURES AND ENHANCED DUCTILITY AT ROOM TEMPERATURE. THE RESEARCH FOCUSES ON A RELATIVELY NEW CLASS OF METALLIC MATERIALS KNOWN AS REFRACTORY MULTI-PRINCIPAL ELEMENT ALLOYS (RMPEAS), WHICH ARE RECOGNIZED FOR THEIR HIGH-TEMPERATURE STRENGTH BUT TYPICALLY SUFFER FROM LIMITED PLASTICITY UNDER AMBIENT CONDITIONS. THE TEAM WILL DEVELOP THE NEW ALLOY DESIGN PARADIGM THROUGH A CONCEPT CALLED ?METASTABILITY ENGINEERING,? WHICH ACTIVATES NOVEL NANO-SCALE DEFORMATION MECHANISMS BY CONTROLLING DISLOCATION DYNAMICS AND PHASE STABILITY. THE RESEARCH INTEGRATES COMBINATORIAL SYNTHESIS, ADVANCED IN-SITU EXPERIMENTS, ATOMISTIC AND MESOSCALE SIMULATIONS, AND MACHINE LEARNING (ML)-GUIDED DISCOVERY. THE RESULTING FRAMEWORK WILL ENABLE ACCELERATED DESIGN OF HIGH-PERFORMANCE RMPEAS ACROSS BROAD TEMPERATURE RANGES. IN PARALLEL, THE PROJECT WILL CONTRIBUTE TO TRAINING A NEW GENERATION OF MATERIALS SCIENTISTS IN EXPERIMENTAL, COMPUTATIONAL, AND DATA-DRIVEN METHODS, WHILE SUPPORTING OUTREACH AND INTERNATIONAL COLLABORATION THROUGH PARTNERSHIPS WITH FIVE US UNIVERSITIES AND INDIAN INSTITUTE OF TECHNOLOGY BOMBAY. THIS PROJECT AIMS TO ESTABLISH A TRANSFORMATIVE FRAMEWORK FOR METASTABILITY ENGINEERING IN REFRACTORY-TYPE MULTI-PRINCIPAL ELEMENT ALLOYS (RMPEAS) THAT COMBINES HIGH-TEMPERATURE STRENGTH WITH IMPROVED ROOM-TEMPERATURE DUCTILITY AND STRAIN HARDENABILITY. THIS PROJECT WILL ADDRESS TWO KEY TECHNICAL THRUSTS: (1) UNDERSTANDING DISLOCATION DYNAMICS FOR SOLID-SOLUTION STRENGTHENING AT BOTH ROOM AND HIGH TEMPERATURES, AND (2) ENABLING NANO-SCALE TRANSFORMATION-INDUCED PLASTICITY (NANO-TRIP) AND TWIN-INDUCED PLASTICITY (NANO-TWIP) MECHANISMS FOR ENHANCING DUCTILITY AT ROOM TEMPERATURE. TO NAVIGATE THE VAST COMPOSITION AND PROCESSING SPACE, THE TEAM WILL INTEGRATE COMBINATORIAL SYNTHESIS, HIGH-THROUGHPUT AND AUTONOMOUS MECHANICAL TESTING, AND ADVANCED MACHINE LEARNING TECHNIQUES TO ACCELERATE THE DISCOVERY OF HIGH PERFORMANCE RMPEAS. IN THE FIRST THRUST, THE PROJECT WILL QUANTIFY THE CONTRIBUTIONS OF DISLOCATIONS TO HIGH-TEMPERATURE STRENGTH THROUGH AUTONOMOUS NANOINDENTATION CREEP TESTING, IN SITU NEUTRON DIFFRACTION, AND ATOMISTIC SIMULATIONS. ADVANCED MICROSCOPY TECHNIQUES WILL BE USED TO REVEAL HOW LOCAL CHEMICAL ORDERING AND LATTICE DISTORTION AFFECT DISLOCATION MOTION. IN THE SECOND THRUST, THE TEAM WILL IDENTIFY COMPOSITION-PROCESSING PATHWAYS THAT PROMOTE METASTABLE DEFORMATION MODES USING THERMODYNAMIC MODELING, COMBINATORIAL DEPOSITION, AND TRANSFORMER-BASED MACHINE LEARNING MODELS. THESE MODELS WILL PREDICT TWIP/TRIP PROPENSITY AND GUIDE MULTI-OBJECTIVE OPTIMIZATION ACROSS LARGE ALLOY DESIGN SPACES. DOWN-SELECTED ALLOY SYSTEMS WILL BE VALIDATED THROUGH MULTISCALE MECHANICAL TESTING AND SIMULATIONS THAT SPAN ATOMIC TO BULK SCALES. COLLECTIVELY, THE PROJECT WILL DELIVER A MECHANISTIC FOUNDATION AND DATA-DRIVEN DESIGN TOOLS FOR METASTABILITY ENGINEERING IN RMPEAS, ALIGNING WITH THE DMREF PROJECT?S MISSION TO ACCELERATE MATERIALS INNOVATION THROUGH THE INTEGRATION OF THEORY, EXPERIMENTATION, AND DATA SCIENCE WITH CLOSED-LOOP DESIGN CYCLES. 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 | $30.0k | 9/4/25 |