Project Grant 2401159
- This $450,000.00 project grant awarded by the National Science Foundation (NSF) under the Mathematical and Physical Sciences program (CFDA 47.049) supports research to develop a new hybrid digital-analog approach to quantum simulation. The project aims to realize effective quantum Hamiltonians involving higher-order spin interactions by interleaving digital gates with analog Hamiltonian evolution within a trapped-ion quantum processor. This hybrid technique is expected to significantly broaden...
- This Project Grant award of $300,000.00 from the National Science Foundation (NSF) Mathematical and Physical Sciences program supports collaborative research on non-linear responses in quantum materials. The project aims to develop theoretical frameworks for understanding how electrons in materials behave when driven far out of equilibrium, which can provide new insights into the underlying quantum dynamics and guide the search for novel quantum materials and functionalities. Key research...
- This federal Project Grant award, made by the National Science Foundation (NSF) under the Mathematical and Physical Sciences program (CFDA 47.049), supports research on hybrid solid-state quantum systems that combine semiconductor spin qubits and superconducting circuits. The $799,123 award to the University of Rhode Island, with a sub-award to the Massachusetts Institute of Technology, aims to advance the state of quantum information science and engineering. The key products or services to be...
- This $1,200,000 Project Grant award from the National Science Foundation's Mathematical and Physical Sciences program (CFDA 47.049) supports a collaborative research effort led by Purdue University, the Massachusetts Institute of Technology, and the University of Southern California. The project aims to design a new class of quantum materials based on perovskite quantum dots that can enable efficient, wave-like transport of information and energy. Key objectives include understanding how these...
- This Project Grant award of $300,000 from the National Science Foundation's (NSF) Mathematical and Physical Sciences (CFDA 47.049) program will fund research and education focused on the study of novel materials with strong interactions between particles. The research aims to develop new theoretical tools to better understand and predict the unusual behaviors of strongly interacting metals, which exhibit phenomena like high-temperature superconductivity that challenge current theories....
- This Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences program, CFDA 47.049, supports theoretical and computational research and education to enhance the accuracy and efficiency of first-principles quantum mechanical simulations for studying the electronic structure of materials. The $220,991 award aims to develop innovative machine learning-based approximations to the exact functional within density functional theory, which is critical for...
- 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...
- This $330,000 federal Project Grant award from the National Science Foundation (CFDA 47.049 - Mathematical and Physical Sciences) supports research and education activities at Yale University aimed at developing a fundamental understanding of quantum phases of matter. The key products and services to be delivered under this 3-year award include: Systematic development of a theory for new types of non-local observables, called "disorder operators", that can probe the fluctuations of...
- This Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences program (CFDA 47.049) supports theoretical and computational research to enhance the accuracy and efficiency of first-principles quantum mechanical simulations for understanding the electronic structure of materials. The $232,250 award to The Research Foundation for The State University of New York, operating as Stony Brook University, aims to develop innovative approximations to the exact...
- This $200,000 National Science Foundation (NSF) award under the Mathematical and Physical Sciences program (CFDA 47.049) supports a collaborative research project led by the University of California, Berkeley to develop and harness quasi-one-dimensional topological materials for novel electronic, optoelectronic, and sensing functionalities. The project aims to overcome current limitations of topological insulators by focusing on quasi-1D materials, which have the potential to enable new...
NSF-BSF: CDS & E: TENSOR TRAIN METHODS FOR QUANTUM IMPURITY SOLVERS -NONTECHNICAL SUMMARY THIS AWARD IS MADE ON A JOINT US-ISRAELI NSF-BSF. IT SUPPORTS RESEARCH AIMED TO DEVELOP COMPUTATIONAL TECHNIQUES FOR STUDYING QUANTUM IMPURITY MODELS. THESE MODELS ARE IMPORTANT FOR UNDERSTANDING SMALL, STRONGLY INTERACTING, QUANTUM SYSTEMS THAT ARE COUPLED TO LARGER ENVIRONMENTS, SUCH AS A SINGLE ATOM INSIDE A HOST MATERIAL OR A QUANTUM DOT INTERACTING WITH SURROUNDING PARTICLES. QUANTUM IMPURITIES CAN DISPLAY VARIOUS INTERESTING BEHAVIORS, INCLUDING CHANGES IN THEIR ELECTRICAL OR MAGNETIC PROPERTIES, DEPENDING ON THEIR ENVIRONMENT. MOST QUANTUM IMPURITY MODELS ARE TOO COMPLICATED TO SOLVE WITH TRADITIONAL MATHEMATICAL APPROACHES, PARTICULARLY WHEN THEY INVOLVE NUMEROUS INTERACTING PARTS AND LACK SYMMETRICAL STRUCTURE. THE GOAL OF THIS PROJECT IS TO ADVANCE THE NUMERICAL TOOLS WE HAVE AVAILABLE TO TACKLE THESE COMPLEX SYSTEMS AND GAIN A DEEPER INSIGHT INTO THEIR PROPERTIES. QUANTUM IMPURITY MODELS ARE ALSO KEY COMPONENTS OF MORE SOPHISTICATED TECHNIQUES TO CALCULATE THE ELECTRONIC PROPERTIES OF MATERIALS AND MODELS OF MATERIALS. QUANTUM IMPURITY SOLVERS RESULTING FROM THIS INTERNATIONAL COLLABORATION MAY ENABLE NEW TECHNIQUES FOR CALCULATING ELECTRONIC PROPERTIES OF MATERIALS, PARTICULARLY THOSE INVOLVING CORRELATED ELECTRON MOTION RESULTING FROM STRONG INTERACTIONS. NUMERICAL TOOLS PRODUCED BY THIS PROJECT WILL BE MADE WIDELY AVAILABLE TO THE COMMUNITY. THE PROJECT SUPPORTS THE TRAINING OF GRADUATE STUDENTS IN COMPUTATIONAL AND THEORETICAL MATERIALS RESEARCH. SCIENCE PRESENTATIONS FOR THE GENERAL PUBLIC WILL BE DEVELOPED AS PART OF A SATURDAY MORNING PHYSICS OUTREACH ACTIVITY TO THE GENERAL PUBLIC. TECHNICAL SUMMARY THIS AWARD SUPPORTS THE DEVELOPMENT OF QUANTUM IMPURITY SOLVERS FOR A VARIETY OF PURPOSES. QUANTUM IMPURITY SOLVERS ARE NUMERICAL ALGORITHMS THAT CAPTURE THE ?ENTANGLEMENT? OR ?CORRELATION? OF CONFINED QUANTUM SYSTEMS CONSISTING OF A FEW STRONGLY INTERACTING ORBITALS COUPLED TO AN ENVIRONMENT. THEY ARE IMPORTANT BOTH IN THEIR OWN RIGHT IN APPLICATIONS RANGING FROM QUANTUM TRANSPORT TO KONDO PHYSICS, AND IN THE CONTEXT OF EMBEDDING THEORIES SUCH AS THE DYNAMICAL MEAN FIELD AND SELF-ENERGY EMBEDDING THEORIES. THE LACK OF ACCURATE AND GENERIC QUANTUM IMPURITY SOLVERS FOR IMPURITIES WITH GENERAL OFF-DIAGONAL INTERACTIONS AND IMPURITY-BATH HYBRIDIZATION IS ONE OF THE MAIN THEORETICAL LIMITATIONS IN THE ACCURATE SIMULATION OF QUANTUM MANY-BODY SYSTEMS. THIS JOINT US?ISRAELI NSF-BSF PROJECT WILL EXPLORE NOVEL DATA-SCIENCE-INSPIRED TENSOR CONTRACTION AND COMPRESSION SCHEMES FOR QUANTUM IMPURITY SOLVERS, BUILDING ON A LONG-STANDING COLLABORATION BETWEEN THE US AND THE ISRAELI GROUPS, WITH THE AIM OF PROVIDING A NEW GENERATION OF QUANTUM IMPURITY SOLVERS THAT PROVIDE ACCESS TO AREAS OF PARAMETER SPACE THAT ARE CURRENTLY INACCESSIBLE. QUANTUM IMPURITY SOLVERS RESULTING FROM THIS INTERNATIONAL COLLABORATION MAY ENABLE NEW TECHNIQUES FOR CALCULATING ELECTRONIC PROPERTIES OF MATERIALS, PARTICULARLY THOSE INVOLVING CORRELATED ELECTRON MOTION RESULTING FROM STRONG INTERACTIONS. NUMERICAL TOOLS PRODUCED BY THIS PROJECT WILL BE MADE WIDELY AVAILABLE TO THE COMMUNITY. THE PROJECT SUPPORTS THE TRAINING OF GRADUATE STUDENTS IN COMPUTATIONAL AND THEORETICAL MATERIALS RESEARCH. SCIENCE PRESENTATIONS FOR THE GENERAL PUBLIC WILL BE DEVELOPED AS PART OF A SATURDAY MORNING PHYSICS OUTREACH ACTIVITY TO THE GENERAL PUBLIC. QUANTUM IMPURITY SOLVERS RESULTING FROM THIS INTERNATIONAL COLLABORATION MAY ENABLE NEW TECHNIQUES FOR CALCULATING ELECTRONIC PROPERTIES OF MATERIALS, PARTICULARLY THOSE INVOLVING CORRELATED ELECTRON MOTION RESULTING FROM STRONG INTERACTIONS. NUMERICAL TOOLS PRODUCED BY THIS PROJECT WILL BE MADE WIDELY AVAILABLE TO THE COMMUNITY. THE PROJECT SUPPORTS THE TRAINING OF GRADUATE STUDENTS IN COMPUTATIONAL AND THEORETICAL MATERIALS RESEARCH. SCIENCE PRESENTATIONS FOR THE GENERAL PUBLIC WILL BE DEVELOPED AS PART OF A SATURDAY MORNING PHYSICS OUTREACH ACTIVITY TO THE GENERAL PUBLIC. 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 | $113.5k | 3/3/25 | ||
| Not listed | $123.1k | 4/15/24 |