Project Grant 2243742

Award Date 8/15/22
Completion Date 7/31/23
Dollars Obligated $237K
Federal Agency
Division of Physics
Federal Grant Program
47.049
Assistance Type
Project Grant
Place of Performance
Buffalo, NY 14228, USA
Similar Awards
This National Science Foundation Project Grant of $723,430 supports research into coherent radiative dynamics with matter-wave quantum emitters through September 2025. Funded under the Mathematical and Physical Sciences program (CFDA 47.049), the award to Stony Brook University will investigate how tunneling and arrays of quantum emitters influence the propagation of guided atomic matter waves. Specifically, the grantee will explore superradiant and subradiant dynamics, resonant scattering...
The National Science Foundation (NSF) awarded a $350,069 Project Grant under the Mathematical and Physical Sciences (CFDA 47.049) program to the University of Rochester to develop an analog quantum simulator for modeling the dynamics of open quantum systems. The objective is to create a platform using semiconductor quantum dots and quantum electronic circuits that can simulate the dissipative dynamics of excitons in molecular systems, such as those found in photosynthetic complexes or Hubbard...
The National Science Foundation (NSF) awarded a $382,119 Project Grant under the Mathematical and Physical Sciences program (CFDA 47.049) to The Research Foundation For The State University Of New York (RF SUNY), operating as Stony Brook University, from September 1, 2023 to August 31, 2026. The grant will fund research on digital quantum simulations to study the ground states and dynamics of various complex quantum systems, including spin models, gauge theories, and supersymmetric systems....
This $400,000 Project Grant, awarded by the National Science Foundation (NSF) under the Mathematical and Physical Sciences program (CFDA 47.049), supports research to improve the performance of superconducting quantum processors. The project aims to develop methods for predicting and mitigating measurement-induced transitions that currently limit the efficiency of qubit readout in state-of-the-art quantum computers. The research will provide a framework for analyzing and enhancing the dispersive...
This $192,077 two-year Project Grant from the National Science Foundation's Mathematical and Physical Sciences program (CFDA 47.049) supports research and education in quantum optics and quantum information science at Miami University. Specifically, the grant funds theoretical and numerical studies of photon transport and many-body quantum optical effects in chiral waveguide architectures coupled with multiple noisy quantum emitters. Open quantum systems approaches will be used to quantify...
This National Science Foundation (NSF) Engineering (CFDA 47.041) Project Grant award for $408,691 will support the development of a high-dimensional photonic quantum register for the quantum internet at the University of Colorado. The goal is to create the first scalable solid-state photonic quantum register capable of simultaneously storing multiple optical photons within a single nuclear spin. The research aims to enable fundamentally secure communication, distributed quantum computing, and...
This $700,000 Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences program supports research to develop a deeper understanding of quantum phenomena in miniaturized optical circuits. The primary aims are to explore the transition regime where quantum effects become significant as optical circuits are miniaturized in size and power consumption. The research, led by The Leland Stanford Junior University, includes both theoretical and experimental...
This $350,000 Project Grant award from the National Science Foundation's (NSF) Division of Computing and Communication Foundations (CFDA 47.070) supports research by the New York Institute of Technology (NYIT) to develop analog quantum algorithms for studying the non-Markovian dynamics of multi-qubit systems. The research aims to advance the capabilities for modeling open quantum systems, which is critical for harnessing the potential of quantum information processing. Key technical objectives...
This $250,000 federal Project Grant award, provided by the National Science Foundation (NSF) under the Mathematical and Physical Sciences (CFDA 47.049) program, aims to advance quantum technology by exploring the potential of Rydberg exciton polaritons within semiconductors. The key products and services to be delivered through this 3-year project (August 2024 to July 2027) include: Developing new theoretical models to understand and control the interactions between Rydberg excitons and their...
This National Science Foundation (NSF) Project Grant award of $199,637.00 to the Rochester Institute of Technology (RIT), under the NSF Directorate for Engineering (CFDA 47.041) program, aims to enhance the robustness and efficiency of quantum computing hardware and applications. The key objectives are to: 1) Apply machine learning techniques to extract useful information from the noisy output of quantum computers, enabling their practical use despite hardware limitations, and 2) Identify...

This Project Grant from the National Science Foundation Division of Physics, under the Mathematical and Physical Sciences program (CFDA 47.049), provides $237,051 to develop protocols for photon-mediated quantum information processing operations that are resilient to environmental fluctuations. The awardee, the Research Foundation for the State University of New York, will receive funding from August 15, 2022 to July 31, 2023.

The Principal Investigator will use analytical and computational approaches to evaluate the optical properties of different quantum emitter systems, including two-level, three-level and many-level configurations, as well as ensembles of emitters coupled to radiation baths. The goal is to tailor emitter dynamics to specific quantum information processing requirements despite deleterious environmental effects. Protocols using pulse and continuous wave control fields will be developed and assessed for their ability to make stationary-to-flying qubit conversion and other photon-mediated operations efficient despite spectral diffusion induced by fluctuating environments.

Generated 1/6/24, 10:08 AM