Project Grant 2306977
- This Project Grant award from the National Science Foundation's Engineering program (CFDA 47.041) provides $250,000 to the University of Washington to develop a hybrid device that couples excitons in a semiconducting moiré superlattice to nanophotonic resonators, forming a moiré exciton-polariton platform. The project aims to study the resulting strong light-matter interaction to enable analog quantum simulations and advance quantum nano-optoelectronics. Key deliverables include demonstrating...
- This $449,457 Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences (CFDA 47.049) program supports the University of Delaware (UDE) in developing new computational methods for modeling molecular polaritons - hybrid states arising from the interaction between molecules and confined light inside optical cavities. The project aims to bridge the gap between current theoretical models and real-world polariton chemistry experiments involving millions of...
- Purdue University will receive $480,000 over three years from the National Science Foundation under the Mathematical and Physical Sciences program (CFDA 47.049) to develop new microscopy techniques for studying molecular polariton transport. Professor Libai Huang and her research group will work to image the propagation of polaritons in molecular aggregates with 15 femtosecond temporal and 50 nanometer spatial resolution, as well as momentum selectivity. They will investigate the roles of...
- This Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences (MPS) program provides $375,000 in funding to Purdue University to investigate entangled states in organic molecules and explore methods for generating high-fidelity quantum states of light. The research aims to enhance photon collection efficiency and zero-phonon line in organic molecules integrated into nanophotonic cavities and waveguides. Additionally, the project will focus on bringing...
- The National Science Foundation (NSF) Office of Advanced Cyberinfrastructure awarded a $299,798 Project Grant under the Computer and Information Science and Engineering program (CFDA 47.070) to the University of Oklahoma. The grant supports the development of an integrated software platform to simulate polariton photochemical and photophysical processes. Key elements include: Implementation of software modules in open-source electronic structure packages to provide ab initio quantum mechanics...
- This $499,394 Project Grant award from the National Science Foundation (CFDA 47.049 - Mathematical and Physical Sciences) to Cornell University supports research to unlock the potential of organic polariton lasers through systematic molecular design. The goal is to develop a roadmap to reduce organic polariton condensation thresholds and enable electrically injected lasing. The research uses ultrafast spectroscopy and optical microcavity variation to reveal the molecular basis for polariton...
- This federal Project Grant award from the National Science Foundation (NSF) Mathematical and Physical Sciences program (CFDA 47.049) provides $300,000 in funding to Purdue University to conduct research on the interaction of light with cold atom gases. The project, titled "Multiatom-Multiphoton Effects," will utilize computer simulations to understand how light simultaneously interacts with multiple cold atoms. The research aims to explore new quantum effects that arise when many atoms...
- This $256,000 Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences program (CFDA 47.049) supports theoretical research and education to examine superconductivity in the strong coupling regime. The principal investigator and graduate students will focus on several fundamental issues related to quantum-critical metals, including understanding the competition between fermionic incoherence and Cooper pairing, the emergence of dynamical vortices, and the...
- This National Science Foundation (NSF) Mathematical and Physical Sciences program (CFDA 47.049) $1,000,000 project grant award to North Carolina State University aims to advance the understanding of quantum materials and establish a design space for room-temperature superfluorescent quantum emitters. The research program brings together four teams with expertise in material synthesis, quantum property characterization, first principles theory, and computational materials simulations to...
- 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...
RENEWAL: FUNDAMENTAL PHYSICS OF POLARITON CONDENSATES -NONTECHNICAL DECRIPTION: THIS PROJECT, FUNDED JOINTLY BY THE CONDENSED MATTER PHYSICS AND ATOMIC, MOLECULAR AND OPTICAL PHYSICS - EXPERIMENT PROGRAMS, SUPPORTS FUNDAMENTAL PHYSICS STUDIES IN A NEW CLASS OF SUPERFLUIDS. SUPERFLUIDITY IS AN INTRINSICALLY QUANTUM PHENOMENON IN WHICH BELOW A CERTAIN TEMPERATURE, MANY PARTICLES SPONTANEOUSLY JOIN TOGETHER TO ACT AS A WAVE. THERE ARE JUST A FEW PHYSICAL SYSTEMS THAT ARE KNOWN TO ACT THIS WAY. THE OLDEST IS SUPERFLUID LIQUID HELIUM, WHICH FLOWS WITH ZERO VISCOSITY. SUPERCONDUCTING METALS ARE ANOTHER EXAMPLE, IN WHICH ELECTRONS ACT AS A WAVE, AND FLOW WITH ZERO RESISTANCE, AND ULTRACOLD ATOMS IN ULTRAHIGH VACUUM, STABILIZED BY LASER BEAMS AND MAGNETIC FIELD ARE ANOTHER. IN THE PAST DECADE, ANOTHER CLASS OF SUPERFLUID HAS RECEIVED WIDESPREAD ATTENTION, NAMELY ?HEAVY PHOTONS? KNOWN AS ?POLARITONS,? IN WHICH PHOTONS CAN FLOW LIKE A LIQUID. THIS PROJECT SUPPORTS BASIC RESEARCH STUDIES OF THESE POLARITON SUPERFLUIDS, MADE POSSIBLE BY USING SEMICONDUCTOR STRUCTURES, FABRICATED AS PART OF THIS PROJECT, THAT ARE THE BEST IN THE WORLD IN TERMS OF SMOOTHNESS AND LACK OF IMPURITIES. THIS PROJECT CAN HAVE BROAD IMPACT IN INCREASING OUR UNDERSTANDING OF UNIVERSAL PROPERTIES OF SUPERFLUIDS, AND IN MAKING POSSIBLE NEW TYPES OF OPTICAL COMMUNICATIONS DEVICES. THE PI OF THE PROJECT WILL ALSO CONTINUE TO COLLABORATE WITH THE CARNEGIE SCIENCE CENTER IN PITTSBURGH TO EDUCATE THE PUBLIC ON GENERAL QUANTUM MECHANICS AND OPTICS TOPICS. TECHNICAL DESCRIPTION: THIS PROJECT SUPPORTS THE CONTINUING WORK OF PI SNOKE ON FUNDAMENTAL PROPERTIES OF EXCITON-POLARITONS IN GAAS-ALGAAS MICROCAVITIES. THE STRUCTURES ARE DESIGNED BY THE SNOKE GROUP AND THEN FABRICATED USING MOLECULAR-BEAM EPITAXY BY TWO LABS, THE GROUP OF LOREN PFEIFFER AT PRINCETON AND THE GROUP OF ZBIG WASILEWSKI AT THE UNIVERSITY OF WATERLOO. ONE GOAL OF THE PROJECT IS TO ADVANCE THE QUALITY OF THESE MICROCAVITY STRUCTURES, IN PARTICULAR TO MAKE LARGE AREA STRUCTURES WITH A HIGH DEGREE OF FLATNESS AND VERY LITTLE LEAKAGE OF LIGHT OUT OF THE STRUCTURES, WHICH WILL ALLOW THE POSSIBILITY OF OPTICAL CIRCUITS ON A CHIP WITH PROPAGATION LENGTHS OF HUNDREDS OF MICRONS. THE SNOKE GROUP WILL USE ADVANCED OPTICAL METHODS INCLUDING PICOSECOND TIME-RESOLVED SPECTROSCOPY, IMAGING, AND INTERFEROMETRY TO STUDY POLARITON SUPERFLUIDS IN THESE STRUCTURES. IN THE PAST YEAR, TWO BREAKTHROUGH RESULTS HAVE BEEN OBTAINED, AND AN IMMEDIATE GOAL WILL BE TO PERFORM FOLLOWUP EXPERIMENTS TO FULLY UNDERSTAND THESE EFFECTS. ONE OF THESE IS THE DEMONSTRATION OF A TRUE PERSISTENT CURRENT OF A POLARITON SUPERFLUID IN A RING. WHILE INDIRECT EVIDENCE FOR PERSISTENT CURRENT HAS BEEN SEEN IN OTHER SYSTEMS, THE MICROCAVITY POLARITON SYSTEM ALLOWS DIRECT, IN SITU MEASUREMENT OF THE PHASE OF THE SUPERFLUID WHILE IT IS CIRCULATING. THE OTHER NEW RESULT IS A HIGHLY ACCURATE MEASUREMENT OF THE SUPERFLUID FRACTION WHILE THE SYSTEM IS IN THERMAL EQUILIBRIUM. A UNIVERSAL POWER LAW HAS BEEN OBSERVED WHICH WAS NOT THEORETICALLY PREDICTED NOR OBSERVED IN OTHER EXPERIMENTAL SYSTEMS. ONGOING COLLABORATION WITH MANY-BODY THEORISTS WILL SEEK TO CREATE AN ANALYTICAL MODEL FOR THIS POWER LAW. IN THE LONGER TERM, THIS PROJECT WILL SEEK TO MAKE NETWORKS OF COUPLED POLARITON SUPERFLUIDS, WHICH CAN BE USED BOTH FOR ULTRAFAST (~10 PS) OPTICAL SWITCHING METHODS AS WELL AS NOVEL METHODS OF ANALOG OPTICAL COMPUTING TO SOLVE MATHEMATICAL PROBLEMS THAT ARE HARD FOR TRADITIONAL COMPUTERS. 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 PLANNED FOR THIS AWARD.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $166.7k | 5/6/25 | ||
| Not listed | $591.6k | 3/25/24 |
GrantNumber | Description | Subgrantee | Prime Award | Dollars Obligated | Updated At |
|---|---|---|---|---|---|
0129681S | The Trustees Of Princeton University | Project Grant 2306977 | $81.9k | 5/17/24 |