Project Grant 2526504
- This $278,252 Faculty Early Career Development (CAREER) Program grant awarded by the National Science Foundation's (NSF) Division of Civil, Mechanical, and Manufacturing Innovation will fund research to develop a holistic modeling and control framework for understanding how changes in the composite material structure of lithium-ion battery electrodes, particularly silicon/graphite (Si/C) anodes, affect battery performance, safety, and degradation over extended usage. The research aims to shed...
- This $170,000 Project Grant awarded by the National Science Foundation (NSF) Engineering Program (CFDA 47.041) aims to uncover the relationship between liquid electrolytes and battery performance, which is crucial for developing next-generation rechargeable batteries. The research team at the University of Illinois will systematically vary electrolyte composition and concentration to identify optimal solutions, leveraging high-throughput characterization, computational simulations, and machine...
- The National Science Foundation (NSF) awarded a $760,000 Project Grant under the Engineering Program (CFDA 47.041) to Northern Illinois University. The project aims to systematically vary the composition and concentration of battery electrolytes to determine optimal solutions for advanced rechargeable batteries. Key objectives include: 1) Gaining a better understanding of solvation structure through high-throughput experimentation and characterization using techniques like Raman spectroscopy and...
- This National Science Foundation (NSF) CAREER grant (CFDA 47.041 - Engineering) for $540,025 awarded to Wayne State University will develop predictive computational tools for designing electrocatalysts, elucidating electrolyte decomposition chemistries, and investigating interfacial reaction mechanisms in nonaqueous magnesium-carbon dioxide (Mg-CO2) batteries. The 5-year project aims to provide insights to guide the development of sustainable, high-capacity rechargeable batteries as an...
- The National Science Foundation awarded a $241,299 Project Grant to the University of Notre Dame's Notre Dame Research division to develop innovative electrolytes for intermediate-temperature sodium-sulfur and potassium-sulfur batteries. The goal is to identify new solvents that can dissolve the insoluble reaction products formed during battery discharge, enabling higher specific capacity and energy density. The research will utilize a simulation-driven approach combining molecular dynamics...
- This $249,860 Project Grant from the National Science Foundation (NSF) Directorate for Mathematical and Physical Sciences (CFDA 47.049) supports research at the University of Houston to develop machine learning models to predict the mechanical properties of solid-state electrolyte materials for lithium-metal batteries. The goal is to identify electrolyte compositions that can suppress the growth of lithium dendrites, which can lead to battery failure. The research embraces the principles of...
- This two-year, $202,433 project grant from the National Science Foundation's Integrative Activities program (CFDA 47.083) will support the development of composite solid electrolytes to enable high-energy, cost-effective all-solid-state lithium-sulfur batteries. Under the award, an assistant professor at the University of New Mexico will receive a fellowship to study the stability of electrode-electrolyte interfaces in solid-state lithium-sulfur batteries using composite electrolytes. A graduate...
- This National Science Foundation (NSF) Faculty Early Career Development (CAREER) award provides $500,000 over 5 years to the New Jersey Institute of Technology (NJIT) to conduct research, education, and outreach activities in the Engineering program (CFDA 47.041). The project aims to gain fundamental knowledge about the interrelated electrical, chemical, and mechanical behaviors of multiscale active materials for next-generation energy storage applications. Key objectives include studying...
- This $124,827 project grant from the National Science Foundation's Division of Chemical, Bioengineering, Environmental, and Transport Systems will fund research at the University of Texas at Dallas to understand and tailor the anode-electrolyte interfacial layers on lithium metal electrodes. The research aims to develop a new understanding of how the physical and chemical properties of protective layers affect the electrochemical performance and stabilization of lithium metal electrodes. By...
- This $664,749 Project Grant awarded by the National Science Foundation's Division of Materials Research under the Mathematical and Physical Sciences Federal Grant Program (CFDA 47.049) aims to study the reaction pathway and crystallization dynamics for solution-based synthesis of lithium thiophosphate solid electrolytes. The award supports a collaborative research effort between Rensselaer Polytechnic Institute and Saft America, a leading battery manufacturer, to understand the underlying...
CAREER: CHEMICAL NETWORK BASED UNDERSTANDING AND PREDICTION OF ELECTROLYTE DECOMPOSITION IN BATTERIES -NEW TYPES OF BATTERIES ARE NEEDED TO SUSTAINABLY MEET GROWING POWER DEMANDS AND THE REQUIREMENTS OF NOVEL APPLICATIONS LIKE ELECTRIC VEHICLES, RENEWABLE ENERGY STORAGE, AND LOAD LEVELING. A CENTRAL CHALLENGE IN THE DEVELOPMENT OF NEW ELECTROLYTES FOR BATTERIES IS POOR UNDERSTANDING OF THE ELECTROLYTE DEGRADATION PATHWAYS THAT LEAD TO BATTERY FAILURE. THIS CAREER PROJECT WILL DEVELOP COMPUTATIONAL METHODS TO COMPREHENSIVELY ELUCIDATE THESE ELECTROLYTE REACTIONS. SUCCESS IN THIS PROJECT WILL TRANSFORM HOW ELECTROLYTES ARE DESIGNED AND IMPLEMENTED USING A COMPUTATIONAL APPROACH BEFORE COSTLY SYNTHESIS AND TESTING. THE RESULTING NEW KNOWLEDGE ABOUT ELECTROLYTE DEGRADATION CHEMISTRY AND NEW SIMULATION METHODOLOGIES WILL BENEFIT THE NEXT GENERATION OF SCIENTISTS AND ENGINEERS WORKING ON BATTERIES. THIS PROJECT?S INTEGRATED EDUCATION PLAN INCLUDES DEVELOPING HANDS-ON RESEARCH PROJECTS WITH STUDENTS AND FACULTY AT NON-RESEARCH INSTITUTIONS AND DEVELOPING CONTINUING EDUCATION COMPONENTS FOR CHEMICAL ENGINEERS. THE OVERARCHING GOAL OF THIS CAREER PROJECT IS TO ESTABLISH ELECTROLYTE DEGRADATION REACTIONS FROM FIRST PRINCIPLES AS THE BASIS FOR CHARACTERIZING, OPTIMIZING, AND DESIGNING NOVEL BATTERY ELECTROLYTES. THE PROPOSED METHODS WILL LEVERAGE A NOVEL COMBINATION OF TWO RECENT BREAKTHROUGHS, MAKING THIS AN IDEAL TIME TO INVESTIGATE ELECTROLYTE DEGRADATION PROBLEM FROM A COMPUTATIONAL PERSPECTIVE. FIRST, WE WILL USE MODERN SEMI-EMPIRICAL QUANTUM CHEMISTRY TO PROVIDE THE SIMULATION THROUGHOUT REQUIRED TO COMPREHENSIVELY DESCRIBE THE COMPLEX REACTION NETWORKS ASSOCIATED WITH ELECTROLYTE DEGRADATION. SECOND, WE WILL APPLY TRANSFER LEARNING MODELS TO IMPROVE THE ACCURACY OF DESCRIBING REACTIONS IN CONDENSED PHASES AND AT ELECTRODE INTERFACES. IN COMBINATION, THESE STRATEGIES WILL ADDRESS THE TRADEOFF BETWEEN COMPUTATIONAL ACCURACY AND COST THAT HAS LIMITED THE APPLICATION OF REACTION NETWORK CHARACTERIZATIONS TO LIQUID ELECTROLYTES. THESE SIMULATION METHODOLOGIES WILL INITIALLY BE APPLIED TO LIQUID ELECTROLYTE FORMULATIONS THAT HAVE WIDESPREAD USAGE IN CONTEMPORARY LI-ION AND POST LI-ION BATTERIES. DESPITE THE FACT THAT THESE ARE ESTABLISHED ELECTROLYTES, THE DEGRADATION CHEMISTRY THAT DRIVES SOLID-ELECTROLYTE INTERPHASE FORMATION AND ELECTROLYTE-RELATED FAILURE IS STILL INCOMPLETELY RESOLVED. THUS, BY FOCUSING ON THESE ELECTROLYTE CHEMISTRIES, WE WILL BE ABLE TO VALIDATE OUR CHARACTERIZATION METHODOLOGY WHILE ALSO PROVIDING THE FIRST COMPLETE VIEW OF THE DEGRADATION REACTIONS THAT OCCUR IN THESE ELECTROLYTES. THE REACTION DATA GENERATED BY THESE CHARACTERIZATIONS WILL ALSO BE USED TO CREATE REACTION DATABASES THAT WILL FACILITATE MACHINE LEARNING ACTIVITIES AIMED AT PRIORITIZING OR EVEN CIRCUMVENTING MORE COSTLY PHYSICS-BASED SIMULATIONS OF ELECTROLYTES. 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 | $277.7k | 3/21/25 |