Project Grant 2338173
- The Iowa State University received a two-year, $257,035 Project Grant from the National Science Foundation Office of Integrative Activities' Integrative Activities program (CFDA 47.083) to conduct research unveiling the structure and thermodynamic stability of pre-nucleation clusters and their role in multistep nucleation. The university will investigate the early stages of nucleation in aqueous NaCl solutions by integrating solution electrostatic levitation developed by the principal...
- This Project Grant from the National Science Foundation's Division of Chemistry, under the Mathematical and Physical Sciences program (CFDA 47.049), provides $263,799 to support collaborative research between the University of Wyoming and Louisiana State University. The award will fund elucidation of the role of atomic structures of cerium dioxide (111) single crystal surfaces on the nucleation and growth of metal clusters of nickel and cobalt through in situ scanning tunneling microscopy and...
- This National Science Foundation (NSF) Engineering program (CFDA 47.041) Project Grant award of $530,132 to New York University (NYU) aims to improve the sustainability of industrial crystallization processes through an investigation of laser-induced nucleation mechanisms. The project will utilize continuous-flow, high-pressure microfluidic devices and supervised machine learning to quantify the dielectric polarization and colloidal impurity mechanisms that govern light-induced nucleation. The...
- This CAREER (Faculty Early Career Development) Project Grant, awarded by the National Science Foundation (NSF) Division of Materials Research under the Mathematical and Physical Sciences program (CFDA 47.049), funds fundamental research into the direct growth of single-crystal two-dimensional (2D) semiconductors on amorphous glass substrates. Awarded to Washington University on September 1, 2026, with total federal obligations of $417,790 and a completion date of August 31, 2031, the project...
- The National Science Foundation (NSF) Office of Integrative Activities awarded a $124,802 Project Grant to the University of Oklahoma (OU) to study the growth of lead halide perovskite nanocrystals at the single-particle level. This research aims to advance the development of low-cost single photon emitters (SPEs) necessary for building future quantum photonic networks that enable secure quantum communications. Under this 2-year grant, starting September 1, 2023, Professor Yitong Dong and his...
- The National Science Foundation (NSF) awarded a $150,000 Faculty Early Career Development (CAREER) Program grant to Iowa State University of Science and Technology to conduct research on pseudomorphic phase transformations in multilayered nanocomposite materials. The project, supported under NSF's Mathematical and Physical Sciences (MPS) program (CFDA 47.049), aims to gain a fundamental understanding of the process by which depositing one material on another can cause the overgrowth to take on...
- 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...
- This $596,090 federal Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences program supports research by Dr. Michael Schnieders at the University of Iowa to develop new computational methods for simulating and predicting the physical properties of complex organic crystals. These crystals play a vital role in the development of bioavailable pharmaceuticals and the study of biomolecular structures through crystallography. The project aims to create...
- This $165,123 project grant from the National Science Foundation's Mathematical and Physical Sciences program will support the development of new computational methods and software tools for predicting polymorphic crystal structures of organic molecules and elucidating phase transition mechanisms. Mark Tuckerman of New York University and Jerome Delhommelle of the University of North Dakota will create a topological theory for crystal structure generation based solely on molecular order...
- This CAREER Project Grant from the National Science Foundation (NSF) Division of Chemistry under the Mathematical and Physical Sciences program (CFDA 47.049) supports fundamental research into base-metal catalysis at Colorado State University. Awarded on July 1, 2026, with $737,138 in total federal obligations through June 30, 2031, the project delivers scientific research and educational outcomes focused on developing square-planar base-metal complexes to establish electronic...
CAREER: UNVEILING THE STRUCTURE AND STABILITY OF PRENUCLEATION CLUSTERS AND THEIR ROLES IN CRYSTALLIZATION PATHWAY AND FINAL CRYSTAL STRUCTURE -NON-TECHNICAL SUMMARY FOR OVER A CENTURY, SCIENTISTS HAVE BEEN STUDYING NUCLEATION BECAUSE IT GREATLY AFFECTS VARIOUS ASPECTS OF OUR LIVES, SUCH AS PUBLIC HEALTH THROUGH DRUG PRODUCTION AND DEALING WITH URINARY STONES, AS WELL AS IMPACTING INDUSTRIES LIKE FERTILIZERS AND FOODS. DESPITE THE LONG HISTORY OF RESEARCH, UNDERSTANDING THE MECHANISM AND INFLUENCE OF NUCLEATION ON CRYSTAL STRUCTURES IS STILL CHALLENGING DUE TO THE DIFFICULTY IN CHARACTERIZING TINY AND RANDOM PHENOMENA AT THE SUB-NANOSCALE LEVEL. THIS CAREER AWARD, JOINTLY FUNDED BY THE SOLID STATE AND MATERIALS CHEMISTRY PROGRAM IN NSF?S DIVISION OF MATERIALS RESEARCH AND THE ESTABLISHED PROGRAM TO STIMULATE COMPETITIVE RESEARCH (EPSCOR), AIMS TO FIGURE OUT HOW THE STRUCTURE OF SALT SOLUTIONS CHANGES AS THEIR CONCENTRATION INCREASES AND HOW THIS STRUCTURE AFFECTS THE FINAL CRYSTAL FORMATION. TO OVERCOME THE CHALLENGES, A LEVITATION TECHNIQUE AND POWERFUL X-RAY AND NEUTRON SCATTERING WILL BE COMBINED, COLLABORATING WITH ARGONNE NATIONAL LABORATORY AND OAK RIDGE NATIONAL LABORATORY. THE OUTCOMES OF THIS STUDY WILL SIGNIFICANTLY ENHANCE OUR UNDERSTANDING OF THE COMPLEX PROCESS OF CRYSTALLIZATION AND ITS IMPACT ON THE FINAL CRYSTAL STRUCTURE. THIS KNOWLEDGE COULD BENEFIT INDUSTRIES LIKE PHARMACEUTICALS, FERTILIZERS, AND BATTERIES. THROUGHOUT THE PROJECT, A CONSORTIUM WILL BE FORMED AS AN EDUCATIONAL PLATFORM TO PROMOTE DIVERSITY IN THE STEM FIELD, EDUCATE YOUNG SCIENTISTS AND ENGINEERS, AND SHARE OUR FINDINGS WITH K-12 STUDENTS, TEACHERS, AND PARENTS IN IOWA THROUGH EXISTING OUTREACH PROGRAMS LED BY IOWA STATE UNIVERSITY. TECHNICAL SUMMARY NUCLEATION DOMINATES THE SUBSEQUENT CRYSTALLIZATION, CRYSTAL GROWTH, AND THE STRUCTURE AND PROPERTIES OF FINAL CRYSTALS. RECENTLY, NUCLEATION HAS BEEN REPORTED TO OCCUR IN MULTIPLE STEPS, FORMING PRE-NUCLEATION CLUSTERS (PNCS). IT IS APPARENT THAT PNCS PLAY A CRITICALLY IMPORTANT ROLE IN MULTI-STEP NUCLEATION AND THE FINAL CRYSTAL STRUCTURE, YET THEIR NATURE IS POORLY UNDERSTOOD. THE RATIONALE FOR THE PROPOSED RESEARCH IS THAT A MECHANISTIC UNDERSTANDING OF COMPLEX CRYSTALLIZATION WILL LIKELY PROVIDE NEW OPPORTUNITIES TO DEVELOP A METHOD TO CONTROL THE NUCLEATION AND GROWTH OF DESIRED CRYSTAL PHASES. FOR THIS REASON, THIS CAREER AWARD, JOINTLY FUNDED BY THE SOLID STATE AND MATERIALS CHEMISTRY PROGRAM IN NSF?S DIVISION OF MATERIALS RESEARCH AND THE ESTABLISHED PROGRAM TO STIMULATE COMPETITIVE RESEARCH (EPSCOR), AIMS TO IDENTIFY THE CONCENTRATION-DEPENDENT STRUCTURAL EVOLUTION OF PNCS IN AQUEOUS SALT SOLUTIONS AND THE INFLUENCE OF SOLUTION STRUCTURE ON THE CRYSTALLIZATION PATHWAYS AND THE FINAL CRYSTAL STRUCTURE. THE CURRENT EXPERIMENTAL OBSTACLES WILL BE OVERCOME BY INTEGRATING THE SOLUTION ELECTROSTATIC LEVITATOR (SEL) WITH SYNCHROTRON X-RAY SCATTERING AT ARGONNE NATIONAL LABORATORY AND NEUTRON SCATTERING AT OAK RIDGE NATIONAL LABORATORY. THE LONG-TERM GOAL OF THE PROJECT IS TO DEVELOP A PREDICTIVE FRAMEWORK TO ANTICIPATE AND CONTROL THE MULTI-PATHWAY AND MULTI-STEP CRYSTALLIZATION IN VARIOUS AQUEOUS SOLUTIONS TO OBTAIN DESIRED MICROSTRUCTURES IN THE FINAL CRYSTAL PRODUCTS. THE PROPOSED RESEARCH WILL LEAD TO A VERTICAL-STEP ADVANCEMENT TOWARD ELUCIDATING THE MECHANISM OF COMPLEX CRYSTALLIZATION IN ELECTROLYTE SOLUTIONS AND ITS INFLUENCE ON THE FINAL CRYSTAL STRUCTURE. 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 | $133.2k | 9/10/25 | ||
| Not listed | $330.1k | 1/25/24 |