Project Grant 2404430
- This Project Grant awarded by the National Science Foundation (NSF) Mathematical and Physical Sciences (CFDA 47.049) program provides $328,450 in funding to the Illinois Institute of Technology (IIT) and Northern Illinois University (NIU) to investigate the molten salt synthesis of metal oxide nanoparticles. The collaborative research team plans to use advanced X-ray scattering and spectroscopy techniques to study the nucleation and growth mechanisms of nanoparticles produced through molten salt...
- Through a Project Grant award of $488,035 from the National Science Foundation's (NSF) Mathematical and Physical Sciences (CFDA 47.049) program, Purdue University is investigating ultrafast electronic and structural dynamics in metal chalcogenide nanoclusters and their assembled superatomic materials. The principal investigator, Hanzhe Liu, is using ultrashort extreme ultraviolet light pulses to observe real-time electronic and atomic motions within these superatomic solids. This technique...
- The National Science Foundation (NSF) awarded a $425,000 Project Grant under the Mathematical and Physical Sciences program (CFDA 47.049) to Northwestern University for a 3-year research project on the "Transient Physicochemical Properties of Nanomaterials." The grant supports experimental studies by Professor Richard Schaller to investigate the crystal lattices, surfaces, and surface ligand behavior of semiconductor and metal nanoparticles. The research aims to elucidate the...
- This National Science Foundation award provides $260,703 to Louisiana State University under the Mathematical and Physical Sciences program (CFDA 47.049) to support collaborative research elucidating the role of cerium oxide surface structures on the nucleation and growth of metal clusters. Professors Jing Zhou of the University of Wyoming and Ye Xu of Louisiana State University will combine in situ scanning tunneling microscopy and theoretical modeling to reveal atomic details of how nickel and...
- The Washington University Office of Sponsored Research Services Division was awarded a three-year $176,693 project grant from the National Science Foundation Division of Chemistry under the Mathematical and Physical Sciences program (CFDA 47.049) to conduct collaborative research on the thermodynamics and kinetics of halide-driven crystal structure control of manganese and lanthanide chalcogenide nanocrystals. The university researchers will investigate how the presence of halides influences the...
- Summary of Federal Grant Award The National Science Foundation (NSF) Division of Chemistry awarded a $270,000 Project Grant (CFDA 47.049, Mathematical and Physical Sciences Program) to Virginia Polytechnic Institute & State University effective March 1, 2026, with completion targeted for October 31, 2027. This collaborative research award supports investigation into molten salt synthesis of metal oxide nanoparticles through in situ X-ray scattering and spectroscopy techniques. The primary...
- The National Science Foundation (NSF) Division of Chemistry awarded a $300,000 EAGER (Early-concept Grants for Exploratory Research) project grant to the University of Pittsburgh. The objective of this 2-year project is to develop new methods that leverage the advantages of light in the chemical synthesis of nanomaterials. Specifically, the project aims to use catalytic, photoredox-mediated nanoparticle synthesis to elucidate how the nucleation of bimetallic nanoparticles impacts their size,...
- This Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences (CFDA 47.049) program provides $510,000 to the University of Virginia to develop advanced chemical synthesis methods for producing nanocrystals with non-precious metal cores and thin, ordered intermetallic shells. The project aims to address challenges in nanochemistry by enhancing the fundamental understanding of the chemical processes involved in creating these complex inorganic...
- This $333,850 Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences program (CFDA 47.049) aims to elucidate the structures and dynamics of plasmonic catalysts used for sustainable chemical manufacturing. Principal Investigator Jain from the University of Illinois at Urbana-Champaign and collaborators at Humboldt University and Helmholtz-Zentrum in Berlin will utilize advanced in-situ electron microscopy and spectroscopy techniques to study the...
- The National Science Foundation (NSF) awarded a $506,268 project grant to the University of Michigan to study photochemical transformations on metal nanoparticles through the NSF's Mathematical and Physical Sciences (CFDA 47.049) program. The grant supports Professor Suljo Linic and his team's research on using solar energy to drive "plasmonic catalysis" - a process where light-absorbing metal nanoparticles can efficiently drive desirable chemical reactions. The central hypothesis is...
COLLABORATIVE RESEARCH: INVESTIGATING THE MOLTEN SALT SYNTHESIS OF METAL OXIDE NANOPARTICLES VIA IN SITU X-RAY SCATTERING/SPECTROSCOPY TECHNIQUES -WITH THE SUPPORT OF THE MACROMOLECULAR, SUPRAMOLECULAR AND NANOCHEMISTRY PROGRAM IN THE DIVISION OF CHEMISTRY, YUANBING MAO OF THE ILLINOIS INSTITUTE OF TECHNOLOGY (IIT) AND TAO LI OF NORTHERN ILLINOIS UNIVERSITY (NIU) WILL INVESTIGATE THE MOLTEN SALT SYNTHESIS OF METAL OXIDE NANOPARTICLES. NANOPARTICLES ARE ATTRACTING WIDE INTEREST DUE TO THEIR EXCEPTIONAL PROPERTIES ENABLING A WIDE RANGE OF APPLICATIONS IN CLEAN ENERGY, PHOTONICS, PHARMACEUTICAL INDUSTRY AND MORE. MOLTEN SALT SYNTHESIS HAS EMERGED AS A RELIABLE AND SCALABLE METHOD TO SYNTHESIZE DIFFERENT TYPES OF NANOPARTICLES. IN THESE STUDIES, THE MAO-LI COLLABORATIVE TEAM WILL USE LIGHT SCATTERING TECHNIQUES TO FOLLOW THE NANOPARTICLE GROWTH PROCESSES BY THE MOLTEN SALT SYNTHESIS AT ILLINOIS INSTITUTE OF TECHNOLOGY AND NORTHERN ILLINOIS UNIVERSITY THROUGH A PARTNERSHIP WITH ARGONNE NATIONAL LABORATORY. THE TEAM SEEKS TO HELP ELUCIDATE THE SYNTHESIS MECHANISMS OF NANOPARTICLES IN MOLTEN SALTS TO GUIDE THE SYNTHETIC PROCESS. THE COLLABORATIVE TEAM PLANS TO INTRODUCE SPECIFIC EDUCATIONAL ACTIVITIES ON NANOCHEMISTRY AND ADVANCED CHARACTERIZATION INTO THE GRADUATE CURRICULUM. THE IIT AND NIU TEAMS ALSO AIM TO BROADEN PARTICIPATION VIA DIVERSE RECRUITING OF UNDERREPRESENTED STUDENTS BY PROVIDING RESEARCH EXPERIENCES FOR UNDERGRADUATE AND GRADUATE STUDENTS. THE TEAM WILL WORK TO RECRUIT PROSPECTIVE FEMALE AND MINORITY STUDENTS AND TO PERFORM OUTREACH PRESENTATIONS TO K-12 STUDENTS. THIS COLLABORATIVE PROJECT FOCUSES ON THE ELUCIDATION OF THE COMPLEX NUCLEATION AND GROWTH PHENOMENA IN THE MOLTEN SALT SYNTHESIS OF METAL OXIDE NANOPARTICLES. THE NIU/IIT TEAM WILL COMBINE X-RAY ABSORPTION SPECTROSCOPY AND SMALL-ANGLE X-RAY SCATTERING TO ACHIEVE IN SITU MONITORING OF NANOPARTICLE GROWTH WITH HIGH TEMPORAL AND SPATIAL RESOLUTION. THE TEAM SEEKS TO UNRAVEL THE NUCLEATION AND GROWTH MECHANISMS OF MOLTEN SALT SYNTHESIS FOR METAL OXIDE NANOPARTICLES. THIS IS TO BE ACHIEVED BY DETERMINING PARTICLE SIZE, SIZE DISTRIBUTION, AND CHEMICAL COMPOSITION OVER A WIDE RANGE OF TIME AND LENGTH SCALES, FROM EARLY PRECURSOR REACTIONS AND METASTABLE INTERMEDIATES AND AGGREGATED STATES TO THE FINAL GROWTH STATES. THIS STUDY IS DESIGNED TO EXPLORE THE MECHANISM OF NANOPARTICLE GROWTH UNDER MOLTEN SALT CONDITIONS AND COMPARE THE CHARACTERISTIC EMPIRICAL NUCLEATION AND GROWTH PHASES REPORTED IN THE RECENT LITERATURE WITH THAT OBSERVED IN THE PRESENT STUDY. THIS INVESTIGATION SHOULD ANSWER ESTABLISH WHETHER NONCLASSICAL NUCLEATION AND GROWTH PROCESSES ARE GENERALLY OBSERVED FOR THE MOLTEN SALT SYNTHESIS PROCESS AND HOW THESE COMPLEX SYSTEMS CAN BE DESCRIBED IN TERMS OF THEIR NUCLEATION AND GROWTH KINETICS. IF SUCCESSFUL, SUCH INSIGHTS AND INCREASED CHEMICAL UNDERSTANDING WOULD PROVIDE GUIDANCE TO THE SCIENTIFIC COMMUNITY FOR MOLTEN SALT SYNTHESIS OF OTHER CLASSES OF MATERIALS. THE SCIENTIFIC IMPLICATIONS OF THIS WORK COULD BE QUITE SUBSTANTIAL; THE ABILITY TO RATIONALLY SYNTHESIZE A GIVEN SIZE AND POLYMORPH OR PHASE OF NANOPARTICLES IS HIGHLY DESIRABLE. THESE STUDIES HAVE THE POTENTIAL TO PROVIDE GUIDANCE HOW TO CONTROL THESE FEATURES OF NANOPARTICLES, FEATURES THAT DICTATE THEIR MECHANICAL, OPTICAL, CATALYTIC, AND ELECTRONIC PROPERTIES. 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 | ($270k) | 2/25/26 | ||
| Not listed | $270.0k | 5/1/24 |