Project Grant 2201027
- This $600,000 National Science Foundation Division of Chemistry Project Grant supports research into elucidating exciton transport in hierarchical organic materials through time-resolved electronic and vibrational spectroscopy/microscopy. Led by researchers at Montana State University and the University of Miami, the award will fund investigation of energy transport in light-harvesting superstructures comprised of stacked aromatic dyes covalently bonded together with molecular tethers. By...
- This $550,000 National Science Foundation Division of Chemistry Project Grant supports research at the University of Colorado Boulder from August 1, 2022 to July 31, 2025 aimed at enabling the measurement of thermodynamic energies for molecules excited by light. Professor David Jonas and his research group will use multidimensional femtosecond laser techniques and molecular spectroscopy to measure thermodynamic standard free energies for excited states relative to ground states. They will test...
- This National Science Foundation (NSF) Mathematical and Physical Sciences (CFDA 47.049) Project Grant award to The Administrators of the Tulane Educational Fund (Tulane University) provides $112,576 in funding from February 1, 2024 to March 31, 2024 to support theoretical research, computation, and education aimed at developing more accurate and predictive density functionals for the exchange-correlation energy in quantum mechanical modeling of molecules, chemicals, and materials. The research...
- The National Science Foundation (NSF) awarded a $199,762 Project Grant under the Mathematical and Physical Sciences (CFDA 47.049) program to a research team led by Erik Grumstrup at Montana State University and Jean-Hubert Olivier at the University of Miami. The grant supports collaborative research to elucidate exciton transport in hierarchical organic materials through time-resolved electronic and vibrational spectroscopy/microscopy. The researchers aim to provide fundamental understanding...
- Dr. Ding-Shyue Yang of the University of Houston will utilize $465,000 in Project Grant funding from the National Science Foundation's Division of Chemistry and Mathematical and Physical Sciences program to elucidate structures and energy transport dynamics of solid-supported molecular assemblies. Using time-resolved electron diffraction with sub-angstrom spatial and temporal resolution, Dr. Yang and his research team will visualize laser-induced motions in liquid films deposited on solid...
- This $650,000 Project Grant awarded by the National Science Foundation's Division of Chemistry under the Mathematical and Physical Sciences (CFDA 47.049) program supports research by Professor Lai-Sheng Wang and his team at Brown University to investigate the electronic structure and chemical bonding of cryogenically-cooled boron and metal-boride nanoclusters. The research aims to provide fundamental insights into boron chemistry and chemical bonding, with the potential for discovering novel...
- This $559,842 Project Grant award from the National Science Foundation's (NSF) Division of Chemistry under the CFDA Program 47.049 - Mathematical and Physical Sciences supports the development of theoretical models and computational data analysis tools by Dr. Dmitrii E. Makarov of the University of Texas at Austin. The research aims to decipher the fundamental mechanisms of biomolecular motions and the efficiency of molecular machines through a synthesis of chemical theory, computational...
- 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...
- This Project Grant award from the National Science Foundation's (NSF) Division of Chemistry will support a research program at the University of Rhode Island (URI) that explores the use of photoinduced molecular heating to drive thermal chemistry under ambient conditions. The $438,432 award, effective September 1, 2024 through August 31, 2027, will fund experiments to investigate the conversion of photon energy into localized heat, which can then drive challenging thermal reactions and...
- This $382,770 Project Grant from the National Science Foundation Division of Chemistry supports research into the non-adiabatic dynamics of liquid jets studied through time-resolved extreme ultraviolet photoelectron spectroscopy. Led by Professor Daniel Neumark at the University of California, Berkeley, the research team will examine the pathways for electronic relaxation of nucleic acid constituents in aqueous solution following ultraviolet photoexcitation. The experiments probe relaxation...
BALLISTIC ENERGY TRANSPORT IN MOLECULES -WITH SUPPORT FROM THE CHEMICAL STRUCTURE, DYNAMICS, AND MECHANISMS-A (CSDM-A) PROGRAM IN THE DIVISION OF CHEMISTRY, A RESEARCH TEAM LED BY PROFESSORS IGOR RUBTSOV AND ALEXANDER BURIN AT TULANE UNIVERSITY WILL INVESTIGATE BALLISTIC ENERGY TRANSPORT, A PROCESS THAT IS RESPONSIBLE FOR UNUSUALLY RAPID AND EFFICIENT MOVEMENT OF ENERGY IN MOLECULES. ENERGY, IN THE FORM OF HEAT, TYPICALLY FLOWS THROUGH MATERIALS THROUGH A PROCESS CALLED THERMAL DIFFUSION. HOWEVER, PROFESSOR RUBTSOV AND HIS RESEARCH TEAM PREVIOUSLY IDENTIFIED SYSTEMS WHERE ENERGY DEPOSITED IN ONE END OF A MOLECULE IS RAPIDLY TRANSFERRED THROUGH THE MOLECULAR BACKBONE TO DISTANT LOCATIONS. THIS PROJECT EXAMINES THE UNDERLYING DETAILS OF THIS ANOMALOUS TRANSPORT OF ENERGY. A DEEPER UNDERSTANDING OF BALLISTIC ENERGY TRANSPORT MAY HELP SCIENTISTS DESIGN NEW MATERIALS WITH IMPROVED THERMAL CONDUCTIVITY PROPERTIES WHERE THE DIRECTION, SPEED, AND EFFICIENCY OF ENERGY TRANSPORT ARE CONTROLLED. THE PROJECT ALSO PROVIDES INTERDISCIPLINARY TRAINING FOR GRADUATE AND UNDERGRADUATE STUDENTS ENGAGED IN THE RESEARCH, AS WELL AS OPPORTUNITIES FOR MIDDLE SCHOOL STUDENTS FROM UNDERREPRESENTED GROUPS TO PARTICIPATE IN EDUCATIONAL ACTIVITIES THAT PROMOTE CHEMISTRY. THE TEAM WILL USE ULTRAFAST DUAL-FREQUENCY TWO-DIMENSIONAL INFRARED SPECTROSCOPY METHODS IN THE LABORATORY AND WILL IMPLEMENT FIRST-PRINCIPLE THEORETICAL MODELING TO ELUCIDATE THE EFFICIENCY, SPEED, AND MECHANISMS OF ENERGY TRANSPORT IN A RANGE OF OLIGOMERIC CHAINS, POTENTIALLY PROVIDING ACCESS TO A LARGE LIBRARY OF MOLECULAR SYSTEMS THAT DEMONSTRATE EFFICIENT ENERGY TRANSPORT. THE AIM OF THE PROPOSED RESEARCH IS TO UNDERSTAND THE CHEMICAL AND PHYSICAL ORIGINS OF THE PROCESSES OF FORMATION, PROPAGATION, AND DETECTION OF THE VIBRATIONAL WAVEPACKETS, WHICH REPRESENT COMPACT BUNDLES OF ENERGY. ONE FOCUS OF THE PROGRAM IS TO ACCESS REGIMES OF EFFICIENT WAVEPACKET INITIATION IN LONGER MOLECULAR CHAINS AND TO EXPLORE A VARIETY OF CONDITIONS FOR IMPLEMENTING SUCH REGIMES. ANOTHER FOCUS IS TO INVESTIGATE HOW ELECTRONIC CONJUGATION IN OLIGOMERIC CHAINS AFFECTS THE WAVEPACKET INITIATION, TRANSPORT SPEED, AND TRANSPORT EFFICIENCY AND TO EXPLORE THE ABILITY OF ALTERING THE ENERGY TRANSPORT SPEED AND EFFICIENCY BY CHANGING THE DEGREE OF THE ELECTRONIC CONJUGATION BY EXTERNAL STIMULI. THESE STUDIES TARGET THE DEVELOPMENT OF DESIGN PRINCIPLES FOR EFFICIENT ENERGY TRANSPORTERS AND ENERGY TRANSPORT SWITCHES. THE BROADER IMPACTS OF THE PROJECT INCLUDE ADVANCED STUDENT TRAINING, RESEARCH OPPORTUNITIES FOR STUDENTS FROM GROUPS THAT ARE UNDERREPRESENTED IN SCIENCE, AND ADDITIONAL EDUCATIONAL OUTREACH ACTIVITIES FOR MIDDLE SCHOOL STUDENTS. 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.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $470.0k | 8/14/25 | ||
| Not listed | $450.0k | 4/6/22 |