Project Grant 2329027
- This Project Grant award of $799,967 from the National Science Foundation's (NSF) Mathematical and Physical Sciences program supports research to develop materials and devices that can preserve quantum coherence, enhance light-matter interactions, and achieve strong charge confinement. The key objectives are to: Investigate advanced superconducting quantum materials by measuring superconducting resonator quality factors and studying new materials with surface treatment techniques. Develop...
- This Project Grant award from the National Science Foundation's Mathematical and Physical Sciences program (CFDA 47.049) supports a collaborative research effort to characterize the quantum information science and engineering (QISE) workforce and academic landscape in the United States. The $369,722 award to the Regents of the University of Colorado will fund three main activities over a period of three years: (1) a study analyzing the knowledge, skills, and abilities required for QISE...
- This National Science Foundation (NSF) Project Grant award under the Mathematical and Physical Sciences program (CFDA 47.049) provides $400,000 to Syracuse University to conduct research on understanding the physical mechanisms governing qubit transitions during the measurement process in superconducting quantum computers. The project aims to develop and experimentally verify methods for predicting these transitions in order to improve the performance and capabilities of modern quantum...
- This $600,000 Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences program (CFDA 47.049) supports research by Dartmouth College to advance the understanding of non-Hermitian dynamics in quantum systems. The project aims to: (1) theoretically characterize the stability and entanglement properties of non-Hermitian bosonic systems, including under time-varying conditions; (2) experimentally demonstrate a tunable quantum-level non-Hermitian nonlinear...
- The National Science Foundation (NSF) awarded a $600,000 Project Grant under the Mathematical and Physical Sciences (CFDA 47.049) program to Middle Tennessee State University (MTSU) to establish a comprehensive Quantum Information Science and Engineering (QISE) program. The 3-year project, titled "EXPANDQISE: TRACK 1: QUANTUM@MTSU: BUILDING QISE RESEARCH AND EDUCATION IN MIDDLE TENNESSEE," aims to advance quantum technology research, education, and workforce development in the Middle...
- This National Science Foundation Project Grant of $181,751 supported research at the University of Rhode Island from August 15, 2022 to June 30, 2025 under the Mathematical and Physical Sciences program (CFDA 47.049). The award funded theoretical research exploring nonclassical states of light as resources for quantum metrology. Specifically, the principal investigator and their research group investigated quantifying nonclassical states using the framework of quantum resource theory and...
- This Project Grant award of $700,000 from the National Science Foundation's STEM Education program (CFDA 47.076) supports research and educational initiatives in quantum information science and engineering (QISE) at Hunter College, in collaboration with Rensselaer Polytechnic Institute and the University of Maryland. The key objectives are to develop electrically tunable persistent spin helixes and understand their exchange interactions with defect spin qubits, as a novel approach for quantum...
- This $338,083 Project Grant awarded by the National Science Foundation's (NSF) Mathematical and Physical Sciences program (CFDA 47.049) will support a collaborative research project led by the Rochester Institute of Technology (RIT) to characterize the quantum information science and engineering (QISE) workforce and education landscape. The key activities include: 1) Conducting semi-structured interviews with approximately 40 QISE industry employees to analyze the knowledge, skills, and...
- This is a National Science Foundation (NSF) Project Grant award under the Mathematical and Physical Sciences grant program (CFDA 47.049) totaling $799,915. The project, titled "EXPANDQISE: TRACK 1: INTEGRATING SINGLE MOLECULES TO TWO-DIMENSIONAL MATERIALS TOWARD QUANTUM DEVICES," aims to develop scalable and controllable single-molecule field effect transistors using advanced 2D materials and atomic force microscopy nanolithography techniques. The overarching goal is to create...
- This National Science Foundation (NSF) Project Grant award under the Mathematical and Physical Sciences program (CFDA 47.049) provides $792,705 to the University of Tennessee at Chattanooga (UTC) from October 1, 2024 to September 30, 2027. The project aims to establish a comprehensive Quantum Information Science and Engineering (QISE) program at UTC, focusing on research, education, workforce development, and community engagement in quantum technologies. The key products and services to be...
EXPANDQISE: TRACK 1: EXCEPTIONAL ENTANGLEMENT TRANSITION AND SUPERSENSITIVE QUANTUM SENSING EMPOWERED BY ANTI-HERMITICITY AND SYMMETRIES -NON-TECHNICAL ABSTRACT: AS AN EMERGING INTERDISCIPLINARY RESEARCH AREA, QUANTUM INFORMATION SCIENCE AND ENGINEERING (QISE) IS POISED TO REVOLUTIONIZE COMPUTING, COMMUNICATION, SIGNAL PROCESSING, NETWORKS, METROLOGY, SENSING, AND MORE. HOWEVER, DESPITE NOTABLE PROGRESS IN THIS FIELD, THE DECOHERENCE OF QUANTUM STATES INEVITABLY INTRODUCES IMPERFECTIONS AND ERRORS IN QUANTUM OPERATIONS. IN THIS PROJECT, THE TEAM AIMS TO TACKLE THIS CHALLENGE BY HARNESSING NON-HERMITIAN PHYSICS, ALONG WITH NON-HERMITICITY AND SYMMETRIES, TO PRESERVE AND ENHANCE NONCLASSICAL CORRELATIONS AND ENTANGLEMENT PROPERTIES IN TWO COMPLEMENTARY OPEN QUANTUM SYSTEMS WITH GROUNDBREAKING THEORETICAL AND EXPERIMENTAL DEMONSTRATIONS. THESE ADVANCEMENTS CAN HAVE EXEMPLARY APPLICATIONS IN SUPERSENSITIVE QUANTUM SENSING. MOREOVER, THE STUDY OF THESE TWO SYSTEMS UNVEILS NEW INSIGHTS INTO THE DISTINCT CHARACTERISTICS OF NON-HERMITIAN QUANTUM PHYSICS, WHICH FUNDAMENTALLY DIFFER FROM CLASSICAL OR HERMITIAN PHYSICS. THIS PROJECT ALSO PRIORITIZES STUDENT TRAINING, PARTICULARLY FOCUSING ON THOSE FROM UNDERREPRESENTED MINORITIES, THEREBY STRENGTHENING THE PIPELINE THAT SUPPLIES THE SCIENCE AND ENGINEERING WORKFORCE IN QISE. OUTREACH ACTIVITIES, SUCH AS PUBLIC LECTURES AND HIGH SCHOOL QUANTUM SUMMER RESEARCH INTERNSHIPS, CATER TO HIGH-SCHOOL STUDENTS AND THE GENERAL PUBLIC, THUS FOSTERING BROADER ENGAGEMENT WITH QUANTUM SCIENCE AND TECHNOLOGY. TECHNICAL ABSTRACT: INTEGRATED QUANTUM PHOTONICS AND SUPERCONDUCTING CIRCUITS ARE EMERGING AS TWO PRIMARY CONTENDERS FOR VARIOUS QISE TASKS. HOWEVER, THEIR QUANTUM PERFORMANCE IS HIGHLY SUSCEPTIBLE TO DECOHERENCE. THE CURRENT MAINSTREAM QISE RESEARCH FOCUSES ON CONTROLLING AND MITIGATING VARIOUS DECOHERENCE FACTORS TO PRESERVE THE COHERENCE OF QUANTUM STATES, YET, SIGNIFICANT CHALLENGES PERSIST. IN THIS PROJECT, THE TEAM EXPLOITS THE EFFECTS OF ANTI-HERMITICITY AND SYMMETRIES SUCH AS PARITY-TIME SYMMETRY, AND THEIR INDUCED NONTRIVIAL PHASE TRANSITIONS. FIRST-OF-ITS-KIND TESTBEDS, WHICH LINK TWIN BEAMS OR TWO COUPLED QUBITS WITH PHASE-SENSITIVE AMPLIFICATION OR NATURAL DISSIPATION, WILL BE DEVELOPED. THESE TESTBEDS ENABLE STUDIES ON QUADRATURE AND QUANTUM-MECHANICAL PASSIVE PARITY-TIME SYMMETRIES, RESPECTIVELY. THE PROJECT EMPHASIZES THE NON-HERMITIAN EVOLUTION OF QUANTUM SYSTEMS WITH NONCLASSICAL CORRELATIONS AND ENTANGLEMENT, EXPLORING THEIR INTRICATE AND EVEN COUNTERINTUITIVE CONNECTIONS WITH NON-HERMITICITY AND SYMMETRIES. FURTHERMORE, THIS PROJECT EXPLORES THE POTENTIAL APPLICATIONS OF THESE SYSTEMS IN SUPERSENSITIVE QUANTUM SENSING. THE SUCCESSFUL OUTCOMES OF THIS PROPOSAL WILL DEEPEN OUR UNDERSTANDING OF THE FUNDAMENTAL ROLES OF GAIN AND LOSS IN SYMMETRY-UNDERLYING PHYSICS AND THEIR IMPLICATIONS IN OPEN QUANTUM SYSTEMS. ADDITIONALLY, IT WILL PROVIDE EXPERIMENTAL INSIGHTS INTO SEVERAL OPEN QUESTIONS THAT ARE CURRENTLY SUBJECT TO FOCUSED DEBATE. MOREOVER, THE EXOTIC QUANTUM PHOTONIC PROCESSING, BASED ON CONTINUOUS VARIABLES AND DISCRETE VARIABLES, UNDER QUADRATURE AND PASSIVE PARITY-TIME SYMMETRIES, CAN OFFER ELEGANT SOLUTIONS TO KEY CHALLENGES THAT ARE INSURMOUNTABLE USING EXISTING HERMITIAN METHODOLOGIES. WHILE THE CURRENT EXPERIMENTAL RESEARCH IS LIMITED TO DEMONSTRATING A FEW FUNDAMENTAL QUANTUM EFFECTS, DEVELOPED SYSTEMS AND TECHNIQUES FROM THIS GROUNDBREAKING RESEARCH CAN BE DEPLOYED TO A WIDE RANGE OF CONTINUOUS-VARIABLES- AND DISCRETIZED-VARIABLES-BASED QISE STUDIES. THIS PROJECT IS JOINTLY FUNDED BY THE OFFICE OF MULTIDISCIPLINARY ACTIVITIES (MPS/OMA), AND THE TECHNOLOGY FRONTIERS PROGRAM (TIP/TF). 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 | 12/15/25 | ||
| Not listed | $596.1k | 8/15/23 |