Project Grant 2206110
- This $3 million National Science Foundation project grant supports research and development activities critical to the success of gravitational-wave astronomy through the Laser Interferometer Gravitational-Wave Observatory (LIGO)-Virgo-KAGRA network. Funded under the Mathematical and Physical Sciences program, the University of Wisconsin-Milwaukee will deliver several data analysis elements for low-latency detection of transient gravitational waves from binary neutron star and black hole...
- This $1,000,000 Project Grant award from the National Science Foundation's (NSF) Mathematical and Physical Sciences program (CFDA 47.049) supports research activities of the University of Wisconsin-Milwaukee (UWM) Laser Interferometer Gravitational-Wave Observatory (LIGO) Scientific Collaboration (LSC) group. The overarching goal is to advance gravitational-wave astronomy through the group's participation in the international LIGO, Virgo, and KAGRA detector network. Key activities include...
- This $242,763 Project Grant from the National Science Foundation's Mathematical and Physical Sciences program (CFDA 47.049) supports collaborative research to open the infrared sky to multi-messenger astrophysics through time-domain surveys. The Massachusetts Institute of Technology will conduct infrared searches using the Wide-field Infrared Transient Explorer telescope at Palomar Observatory to identify counterparts to gravitational wave detections from binary neutron star and neutron...
- The National Science Foundation (NSF) Directorate for Mathematical and Physical Sciences awarded a $465,884 project grant to Carnegie Mellon University to carry out an observational campaign of astronomical transient events using the Dark Energy Camera (DECam). The goal is to discover new electromagnetic counterparts to mergers of binary neutron stars and neutron star-black hole mergers, as well as to study the origin of gravitational wave sources and produce new measurements of the Hubble...
- The National Science Foundation (NSF) Directorate for Mathematical and Physical Sciences awarded a $337,029 Project Grant to Northwestern University for the "COLLABORATIVE RESEARCH: WOU-MMA: SEARCHES AFTER GRAVITATIONAL-WAVES USING ARIZONA'S OBSERVATORIES (SAGUARO)" project. The grant, which runs from September 1, 2023 to August 31, 2026, supports an electromagnetic observing campaign associated with gravitational wave detector observations. Key activities include comprehensive...
- This Project Grant awarded by the National Science Foundation (NSF) under the Mathematical and Physical Sciences program (CFDA 47.049) provides $150,000.00 to Montclair State University from September 1, 2025 to August 31, 2028 to develop and deploy a low-latency alert infrastructure for the international gravitational-wave network in support of the upcoming LIGO Fifth Observing Run. The primary objectives are to design, test, and implement an open-source software toolkit to address the...
- This $374,699 federal Project Grant awarded by the National Science Foundation (NSF) Division of Astronomical Sciences under the Mathematical and Physical Sciences program (CFDA 47.049) will fund a 4-year collaborative research program led by investigators at Louisiana State University, Harvard University, University of Minnesota-Twin Cities, and University of Maryland, College Park. The research aims to improve the understanding of explosive transients in the distant universe by...
- This Project Grant award from the National Science Foundation (NSF) Directorate for Mathematical and Physical Sciences (CFDA 47.049) will provide $298,093 to the University of Arizona (Arizona Board of Regents) from September 1, 2023 through August 31, 2026 to conduct collaborative research on gravitational wave events and associated electromagnetic counterparts. Specifically, the project will carry out comprehensive discovery and follow-up observations of gravitational wave events detected by...
- This $150,000 federal Project Grant awarded by the National Science Foundation's (NSF) Mathematical and Physical Sciences program (CFDA 47.049) supports research conducted by Embry-Riddle Aeronautical University in two key areas: Detector characterization efforts to understand and mitigate the effects of Earth-based noise on the Laser Interferometer Gravitational-Wave Observatory (LIGO) interferometers, enabling more sensitive detection of gravitational waves. This includes near-real time...
- This $350,381 project grant from the National Science Foundation Directorate for Mathematical and Physical Sciences' Mathematical and Physical Sciences program (CFDA 47.049) supports collaborative research between the California Institute of Technology and other institutions to open the infrared sky to multi-messenger astrophysics. Key products and services include conducting time-domain surveys with the Wide-field Infrared Transient Explorer telescope at Palomar Observatory to search for...
WOU-MMA: THE ELECTROMAGNETIC COUNTERPARTS OF GRAVITATIONAL WAVE SOURCES -A RESEARCH GROUP AT HARVARD UNIVERSITY WILL CARRY OUT A PROGRAM TO RAPIDLY SEARCH FOR OPTICALLY-DETECTED COUNTERPARTS TO GRAVITATIONAL WAVE (GW) EVENTS DETECTED BY THE LIGO, VIRGO AND KAGRA (LVK) GW EXPERIMENTS. THE RAPID FOLLOW UP UTILIZES THE DARK ENERGY CAMERA AND THE MMT AND MAGELLAN 6.5-METER TELESCOPES TO SEARCH FOR OPTICAL/NEAR-INFRARED COUNTERPARTS. THESE LARGE-APERTURE TELESCOPES ENABLE WIDE-FIELD AND GALAXY-TARGETED SENSITIVE SEARCHES FROM BOTH HEMISPHERES ON EARTH, CRITICAL FOR THE DISCOVERY OF ELECTROMAGNETIC (EM) COUNTERPARTS (WITH TYPICAL GW LOCALIZATIONS OF ROUGHLY 100 SQUARE DEGREES ON THE SKY AND DISTANCES OF UP TO A FEW HUNDRED MAGAPARSECS). IDENTIFIED COUNTERPARTS WILL BE STUDIED WITH MULTI-WAVELENGTH IMAGING AND SPECTROSCOPY USING RADIO TO X-RAY FACILITIES. STUDENTS WILL GAIN AN UNPARALLELED EXPERIENCE IN THIS EMERGING NEW FIELD. THEY WILL LEAD THE ACQUISITION, ANALYSIS, AND PUBLICATION OF DATA ACROSS THE EM SPECTRUM, AND JOINTLY WITH GW DATA, THEREBY PROVIDING A BROAD TRAINING IN OBSERVATIONAL ASTRONOMY. THE PROJECT WILL ALSO INTEGRATE THIS NEW GW VIEW OF THE UNIVERSE INTO UNDERGRADUATE EDUCATION, AND NARROW THE GAP BETWEEN CLASSROOM LEARNING AND HANDS-ON RESEARCH THROUGH THE ACTIVE PARTICIPATION OF STUDENTS IN OBSERVING WITH HARVARD-SMITHSONIAN TELESCOPES AND THROUGH ANALYSIS OF PUBLIC GW DATA. WHILE THE GW DATA FOR BINARY NEUTRON STARS (BNS) AND NEUTRON STAR-BLACK HOLE (NS-BH) MERGERS PROVIDE UNPRECEDENTED INSIGHT ? THE MASS AND SPIN DISTRIBUTIONS OF NEUTRON STARS AND BLACK HOLES, THE MERGER RATES, AND SENSITIVE TESTS OF GENERAL RELATIVITY ? THE JOINT DETECTION OF EM COUNTERPARTS WILL UNIQUELY EXTEND THE SCIENTIFIC IMPACT BY PROVIDING ACCURATE POSITIONS, PRECISE DISTANCES, AN ASTROPHYSICAL CONTEXT FOR THE BINARY SYSTEMS, A PROBE OF MATTER EJECTION AND NUCLEOSYNTHESIS, AND THE POTENTIAL TO MEASURE COSMOLOGICAL PARAMETERS VIA THE ?STANDARD SIREN? TECHNIQUE. THE KEY OPTICAL COUNTERPART FOR BNS AND NS-BH MERGERS IS EMISSION DUE TO THE RADIOACTIVE DECAY OF R-PROCESS NUCLEI SYNTHESIZED IN THE MERGER EJECTA ? A ?KILONOVA?, ALREADY OBSERVED IN ASSOCIATION WITH THE SHORT GAMMA-RAY BURST GRB 130603B AND WITH GW170817. THE KILONOVA OPTICAL EMISSION IS FAINT AND FADES RAPIDLY AND SO LARGE-APERTURE TELESCOPES ARE ESSENTIAL FOR EFFECTIVE FOLLOW-UP AT LARGER DISTANCES THAN GW170817 (AT ONLY 40 MPC). ADVANCED LIGO-VIRGO (ALV) HAS DEMONSTRATED THE ABILITY TO DETECT BNS AND NS- BH MERGERS, AND THE DETECTABILITY OF EM COUNTERPARTS HAS BEEN PROVEN; THE EVENT RATE IS EXPECTED TO BE AT LEAST A FEW PER YEAR AS ALV AND KAGRA REACH DESIGN SENSITIVITY; AND THE REQUIRED EM FOLLOW-UP PROGRAMS AND COMPUTATIONAL RESOURCES ARE ACTIVE. THIS PROJECT ADVANCES THE GOALS OF THE NSF WINDOWS ON THE UNIVERSE BIG IDEA. 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 | 7/3/25 | ||
| Not listed | $468.7k | 8/17/22 |