Project Grant 2307171
- This $442,985 Project Grant awarded by the National Science Foundation's (NSF) Mathematical and Physical Sciences Program (CFDA 47.049) aims to uncover the growth mechanisms of supermassive black holes. The key objectives are to: 1) Determine the merger rates of supermassive black holes and relate them to gravitational wave observations; 2) Investigate the growth of supermassive black holes during their peak activity period (known as "cosmic noon") and its connection to accretion...
- This Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences (CFDA 47.049) program provides $377,113 to the University of Hawaii at Manoa to uncover the secrets behind the growth of supermassive black holes located at the centers of galaxies. The project aims to 1) determine the merger rates of supermassive black holes and relate these to gravitational wave observations, 2) investigate the growth of supermassive black holes during the peak period of...
- This $539,342 Project Grant award from the National Science Foundation's (NSF) Division of Astronomical Sciences will support research into the unexpectedly high number of bright, rapidly star-forming galaxies observed at the cosmic dawn. The award recipient, Princeton University, will conduct simulations and analytical modeling to understand the physical conditions that could explain these observations, particularly in the context of massive dark matter halos at high redshift. The research aims...
- This three-year project grant from the National Science Foundation's Division of Astronomical Sciences, under the Mathematical and Physical Sciences program (CFDA 47.049), provides $491,956 to Washington State University to conduct collaborative research exploring the formation and growth of supermassive black holes through variability and transients studies. The researchers will use observations from the Young Supernova Experiment to search for active and quiescent supermassive black holes in...
- This Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences Federal Grant Program (CFDA 47.049) supports a collaborative research project that aims to uncover the growth mechanisms of supermassive black holes (SMBHs) at the centers of galaxies. The $588,357 award, effective September 1, 2024, will be utilized by Yale University to pursue three key objectives: 1) determine SMBH merger rates and relate them to gravitational wave observations, 2)...
- This three-year, $257,211 National Science Foundation project grant supports research and educational outreach related to modeling early galaxy formation and the epoch of reionization. Funded under the NSF's Mathematical and Physical Sciences program, the collaborative effort between the University of Nevada, Las Vegas, University of California Los Angeles, and Arizona State University aims to develop advanced modeling tools to maximize scientific return from upcoming telescopes such as the...
- This Project Grant from the National Science Foundation will fund research at the University of Mississippi to advance understanding of compact binary formation through gravitational-wave observations. With $228,443 in funding over three years from August 2022 to July 2025, the award supports development of computational models and software codes to probe the full evolutionary history of precessing binary black holes on both quasi-circular and eccentric orbits. Researchers will also explore...
- This $458,970 Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences program (CFDA 47.049) supports research at Clemson University to advance the scientific understanding of black hole binaries and their gravitational wave signatures. The key products and services to be delivered include: Numerical simulations to model the electromagnetic and gravitational wave signatures of binary black hole systems across a range of masses, including how the...
- This Project Grant from the National Science Foundation Division of Astronomical Sciences totaling $476,066 will support research characterizing low-mass galaxies through spectroscopy from ground-based telescopes and the James Webb Space Telescope. Funded under the Mathematical and Physical Sciences program (CFDA 47.049), the award will allow detection and spectroscopic characterization of the faintest and youngest galaxies ever discovered between redshifts of 4-7. Specifically, the University...
- This National Science Foundation project grant of $104,875 awarded on January 1, 2023 will fund research into measuring fluctuations in radiation from active supermassive black holes and the resulting echoes from surrounding gas clouds. Led by researchers at the University of Wisconsin-Madison under the Mathematical and Physical Sciences program (CFDA 47.049), this two-year project will use reverberation mapping with multi-object spectroscopy to measure black hole masses on an unprecedented...
CHARACTERIZING THE EARLY CO-EVOLUTION OF GALAXIES, BLACK HOLES, AND GRAVITATIONAL-WAVE SOURCES -THE RECENTLY LAUNCHED JAMES WEBB SPACE TELESCOPE (JWST) HAS ALREADY TRANSFORMED OUR UNDERSTANDING OF THE EARLY UNIVERSE. THE DISCOVERY OF RICH POPULATIONS OF GALAXIES AT COSMIC EPOCHS SHORTLY AFTER THE BIG BANG HAS CHALLENGED MODELS FOR GALAXY FORMATION AND EVOLUTION. SUPERMASSIVE BLACK HOLES (BHS), WHICH LIVE IN GALACTIC NUCLEI, HAVE ALSO BEEN OBSERVED BY JWST AT VERY EARLY EPOCHS. THESE BHS ARE THE NEXT FRONTIER IN SCIENCE WITH GRAVITATIONAL WAVES (RIPPLES IN THE FABRIC OF SPACETIME); GRAVITATIONAL WAVES FROM CLOSE PAIRS OF BHS MAY SOON BE DETECTED WITH PULSAR TIMING ARRAYS AND WITH THE LASER INTERFEROMETER SPACE ANTENNA. HOWEVER, THIS COMING WEALTH OF DATA WILL REQUIRE ROBUST THEORETICAL MODELS OF THESE COMPLEX PROCESSES. THE PIS WILL ADDRESS KEY GAPS IN OUR UNDERSTANDING OF BH AND GALAXY EVOLUTION IN THE EARLY UNIVERSE, INCLUDING SYSTEMS THAT PRODUCE GRAVITATIONAL WAVES. USING A SUITE OF STATE-OF-THE-ART COSMOLOGICAL SIMULATIONS, THEY WILL DETERMINE THE IMPACT OF DIFFERENT BH EVOLUTION MODELS ON GALAXY AND BH PROPERTIES IN THE EARLY UNIVERSE. THEIR RESULTS WILL PROVIDE A TRANSFORMATIVE LEAP IN UNDERSTANDING HOW BH FORMATION, GROWTH, AND DYNAMICS IMPACT THEIR CO-EVOLUTION WITH GALAXIES, AS WELL AS THE ENVIRONMENTS IN WHICH GRAVITATIONAL-WAVE SOURCES ARE FOUND. THEY WILL ALSO EXPAND THE UNIVERSITY OF FLORIDA (UF) GATOR COMPUTING PROGRAM (GCP) TO BE A RESIDENTIAL SUMMER PROGRAM FOR HISTORICALLY EXCLUDED HIGH SCHOOL STUDENTS, WITH ADDITIONAL PROGRAMMING THAT LEVERAGES THE RESOURCES OF THE NEW UF ARTIFICIAL INTELLIGENCE INITIATIVE. SUPERMASSIVE BLACK HOLES (BHS) ARE FUNDAMENTAL COMPONENTS OF GALAXY EVOLUTION, AND THEY ARE THE NEXT FRONTIER IN GRAVITATIONAL WAVE (GW) ASTRONOMY: GWS FROM BH BINARIES MAY SOON BE DETECTED WITH PULSAR TIMING ARRAYS (PTAS) AND WITH THE LASER INTERFEROMETER SPACE ANTENNA (LISA). IN THE MEANTIME, INITIAL RESULTS FROM THE JAMES WEBB SPACE TELESCOPE (JWST) HAVE ALREADY TRANSFORMED OUR UNDERSTANDING OF THE HIGH-REDSHIFT UNIVERSE. THE COMING WEALTH OF JWST DATA WILL UNVEIL EARLY BH AND GALAXY EVOLUTION AND PROVIDE CRUCIAL COMPLEMENTS TO GW OBSERVATIONS, BUT THEIR INTERPRETATION WILL REQUIRE ROBUST THEORETICAL MODELS OF THESE COMPLEX PROCESSES. ALTHOUGH THE HIGHLY BIASED POPULATION OF LUMINOUS Z ~ 6 QUASARS CONSTRAINS BH FORMATION AND EARLY GROWTH FOR THOSE MASSIVE OBJECTS, THEY TELL US NOTHING ABOUT THE ORIGINS OF MUCH MORE NUMEROUS, ORDINARY BHS. THIS PROJECT WILL ADDRESS THESE MAJOR QUESTIONS: (1) HOW DO GALAXIES EVOLVE IN CONCERT WITH BHS AND AGN IN THE EARLY UNIVERSE? (2) WHAT ARE THE HOST CHARACTERISTICS OF INSPIRALING BH PAIRS AND GW SOURCES? 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 | $0 | 4/1/26 | ||
| Not listed | $538.8k | 8/16/23 |