Project Grant 2154323
- Professor David Reichman of Columbia University was awarded a $530,000 Project Grant from the National Science Foundation's Mathematical and Physical Sciences program (CFDA 47.049) to develop theoretical methods for simulating novel strongly interacting materials with technological applications. Over a three-year period from May 2023 through April 2026, Reichman and his research group will use machine learning techniques and quantum computing algorithms to model how coupling to optical...
- This $449,999 federal Project Grant awarded by the National Science Foundation (NSF) Division of Chemistry under the Mathematical and Physical Sciences (CFDA 47.049) program supports research led by Professor George Schatz of Northwestern University. The project is developing new theory and computational methods to characterize the interaction of classical and quantum light with molecules, with applications in photon-based quantum computing and secure communications technologies. Key...
- The National Science Foundation (NSF), through its Mathematical and Physical Sciences (MPS) program (CFDA 47.049), awarded a $650,000 Project Grant to Yale University to develop new computational methods for simulating light-matter interactions in complex materials. Over a 5-year period from January 1, 2024 to December 31, 2028, the research team led by Dr. Tianyu Zhu will create a reliable and efficient toolbox for modeling spectroscopic properties of solid-state materials. This will involve...
- This $222,559 National Science Foundation project grant supports the development of new computational tools for characterizing charge transport processes at the quantum level by Professors Erik Hoy of Rowan University and Andrew Sand of Butler University. Funded under the Mathematical and Physical Sciences program, this three-year award will see the joint research team create multi-configurational methods based on multi-configuration pair density functional theory combined with non-equilibrium...
- This $244,955 Project Grant awarded by the National Science Foundation (NSF), under the Mathematical and Physical Sciences program (CFDA 47.049), supports theoretical and computational research to develop advanced computational tools and use them for describing the dynamical behavior of magnetic molecules connected to external electrodes and manipulated by magnetic fields. The research aims to provide a balance between computational efficiency and physical accuracy in simulating such open...
- The National Science Foundation awarded a $501,728 project grant under the Mathematical and Physical Sciences program (CFDA 47.049) to Emory University for the period of June 1, 2023 through May 31, 2026. Under this award, Francesco Evangelista of Emory University and his research team will develop computational methods and open-source computer codes to model core-excited states of molecules experiencing significant electron correlation effects. This will allow them to simulate...
- This $650,000 federal Project Grant awarded by the National Science Foundation (NSF) Division of Chemistry supports the research of Dr. Raphael Florentino Ribeiro of Emory University. The award, effective December 1, 2023 through November 30, 2028, aims to develop new theoretical approaches and computational methods for investigating chemical phenomena in microenvironments that confine light and interact strongly with matter. The research will computationally explore strategies to achieve...
- The National Science Foundation awarded a three-year $435,000 Project Grant to the University of California, Berkeley under the Mathematical and Physical Sciences program (CFDA 47.049) to explore correlated electron states in single-layer field-effect transistors. Through October 2022 to September 2025, the university will characterize the local electronic structure of highly correlated two-dimensional materials using a combination of gate-tunable field effect transistors and scanning...
- The National Science Foundation's (NSF) Chemical Theory, Models and Computational Methods Program within the Division of Chemistry awarded a 5-year, $700,000 CAREER grant to Dr. Philip Shushkov of Indiana University to develop theoretical methods for simulating the dynamics of ensembles of molecular spin qubits. This project aims to characterize the quantum dynamical behaviors of molecular qubit ensembles under different conditions, such as dimensionality, disorder, environmental noise,...
- The National Science Foundation (NSF) awarded a $597,576 Project Grant under the Mathematical and Physical Sciences (CFDA 47.049) program to Marquette University to research quantum molecular dynamics on quantum computers. The project, titled "EXPANDQISE: TRACK 1: QUANTUM MOLECULAR DYNAMICS ON QUANTUM COMPUTERS," has three main thrusts: Further development and application of the Quantum Annealer Eigensolver (QAE) algorithm to calculate molecular spectra and reactivity on D-Wave quantum...
STEADY-STATE AND TRANSIENT PROPERTIES OF STRONGLY CORRELATED SINGLE MOLECULE JUNCTIONS -MICHAEL GALPERIN OF THE UNIVERSITY OF CALIFORNIA, SAN DIEGO IS SUPPORTED BY AN AWARD FROM THE CHEMICAL THEORY, MODELS AND COMPUTATIONAL METHODS PROGRAM IN THE DIVISION OF CHEMISTRY TO DEVELOP A NUMERICALLY EFFICIENT COMPUTATIONAL APPROACH FOR SIMULATION OF STRONGLY CORRELATED OPEN SYSTEMS FAR FROM EQUILIBRIUM. FUNCTIONING OF MODERN QUANTUM MATERIALS RELIES ON PERFORMANCE OF THEIR ELEMENTARY BUILDING BLOCKS: SINGLE MOLECULES AND ATOMS INTERACTING WITH THEIR SURROUNDINGS. STRONGLY CORRELATED SYSTEMS ATTRACT GROWING INTEREST AS A CHALLENGING EXPERIMENTAL AND THEORETICAL PROBLEM PROVIDING NEW INSIGHTS INTO FUNDAMENTAL BEHAVIOR OF MATERIALS AND BECAUSE OF THEIR POTENTIAL APPLICATION AS BUILDING BLOCKS IN QUANTUM TECHNOLOGIES. RECENTLY, COMBINATION OF STM SINGLE-MOLECULE JUNCTION WITH TERAHERTZ (THZ) OPTICAL PROBE YIELDS UNPRECEDENTED POSSIBILITIES OF ATOM SCALE CONTROL AND SPATIOTEMPORAL IMAGING IN SINGLE-MOLECULE JUNCTIONS. APPLICATION OF THE THZ-STM TO STRONGLY CORRELATED SINGLE-MOLECULE JUNCTIONS IS ONLY QUESTION OF TIME. AT THE MOMENT, THERE IS NO THEORETICAL APPROACH AVAILABLE FOR FIRST PRINCIPLE MODELING OF SUCH EXPERIMENTS: CURRENTLY AVAILABLE THEORETICAL APPROACHES ARE EITHER EFFECTIVELY NON-INTERACTING, OR LIMITED IN THEIR RIGOR AND/OR ACCESSIBLE PARAMETER RANGE, OR RESTRICTED TO STRICTLY ONE-DIMENSIONAL SYSTEMS, OR NUMERICALLY HEAVY. GALPERIN WILL DEVELOP NUMERICALLY INEXPENSIVE YET HIGHLY ACCURATE METHODS SUITABLE FOR REALISTIC SIMULATIONS IN OPEN NONEQUILIBRIUM STRONGLY CORRELATED SYSTEMS IN STEADY-STATE AND TRANSIENT REGIMES AND APPLIES THEM IN MODELING SPECTROSCOPY OF STRONGLY CORRELATED SINGLE-MOLECULE JUNCTIONS. THE CROSS-DISCIPLINARY CHARACTER OF THE PROJECT WILL BE INVALUABLE IN DEVELOPING ACADEMIC CURRICULUM FOR POSTDOCS AND GRADUATE STUDENTS, AS WELL AS IN ATTRACTING UNDERGRADUATES INTO RESEARCH. THE PROJECT CONTRIBUTES TO DEVELOPMENT OF MANY-BODY GREEN?S FUNCTION METHODS AND FORMULATION OF THE IMPURITY SOLVERS AND THEIR IMPLEMENTATION IN AREAS WHERE MORE SOPHISTICATED (COMPARED TO TRADITIONAL) TREATMENT IS A NECESSITY. PRACTICAL IMPURITY SOLVERS FOR OPEN SYSTEMS USUALLY EMPLOY DIAGRAMMATIC EXPANSIONS IN A SMALL PARAMETER (E.G., WEAK INTRA-SYSTEM INTERACTION OR WEAK SYSTEM-BATH COUPLING). CORRESPONDING METHODS OF CHOICE ARE THE STANDARD AND PSEUDOPARTICLE NONEQUILIBRIUM GREEN?S FUNCTION (NEGF) TECHNIQUES, RESPECTIVELY. IN MANY EXPERIMENTALLY RELEVANT SITUATIONS (IN PARTICULAR, IN STRONGLY CORRELATED MATERIALS) THERE IS NO SMALL PARAMETER TO USE IN FORMULATION OF A DIAGRAMMATIC EXPANSION. AT THE SAME TIME, NUMERICALLY EXACT METHODS, WHICH DO NOT REQUIRE EXISTENCE OF A SMALL PARAMETER, ARE TOO HEAVY TO BE USED IN REALISTIC SIMULATIONS. MICHAEL GALPERIN WILL DEVELOP AUXILIARY QUANTUM MASTER EQUATION - DUAL FERMION (AUX-DF) AND DUAL BOSON (AUX-DB) METHODS AS A VIABLE ALTERNATIVE. THE METHODS CAPITALIZE ON STRONG SIDES OF DUAL METHODOLOGY AND AUXILIARY QUANTUM MASTER EQUATION TECHNIQUE (LACK OF NECESSITY ION SMALL PARAMETER AND ABILITY TO SOLVE EXACTLY REFERENCE PROBLEM , RESPECTIVELY) IN FORMULATION OF A NEW IMPURITY SOLVER. STRUCTURE OF THE THEORY ALLOWS IMPLEMENTATION OF THE DEVELOPED NEGF METHODS FOR TIME-DEPENDENT PROCESSES IN MUCH MORE COMPLICATED STRONGLY-CORRELATED SYSTEMS. WITH HIGH ACCURACY, EXACT LIMITING BEHAVIOR, AND RELATIVE NUMERICAL AFFORDABILITY AUX-DF AND AUX-DB HAVE POTENTIAL OF BECOMING A COMPUTATIONAL TOOL OF CHOICE FOR STUDIES OF STEADY-STATE AND TRANSIENT (ULTRAFAST) PROCESSES IN STRONGLY CORRELATED SYSTEMS FAR FROM EQUILIBRIUM. THIS DIRECTION OF RESEARCH IS CONCEPTUALLY NEW AND THE ONE WHICH NEVER WAS EMPLOYED IN STUDIES OF OPEN NONEQUILIBRIUM SYSTEMS. 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 | $0 | 8/25/25 | ||
| Not listed | $500.0k | 8/10/22 |