Project Grant 80NSSC19K0525
- The National Science Foundation Division of Astronomical Sciences awarded $859,626 under the Mathematical and Physical Sciences federal grant program (CFDA 47.049) to the Regents of the University of Minnesota for the period of August 1, 2022 through July 31, 2025. The award will support the development of novel anti-reflection coatings for millimeter and submillimeter-wave astrophysics instruments. The researchers will work to improve telescope optics performance for studies of the early...
- This Project Grant award from the National Science Foundation's Division of Astronomical Sciences provides $587,441 to the University of Delaware over 3 years, from August 2023 to July 2026. The purpose is to adapt time-domain data analysis tools previously used in other scientific fields for application in astronomy, specifically for searches of Earth-like exoplanets around distant stars. The key deliverables include: Developing new variance-suppressing power spectrum estimators, like the...
- This Project Grant award from the National Science Foundation (NSF) Division of Atmospheric and Geospace Sciences, under the Geosciences program (CFDA 47.050), will support a collaborative research effort totaling $559,349 over 3 years to better understand the thermal balance of Earth's upper atmosphere. The key products and services to be delivered include: Laser-based laboratory studies of collisions between carbon dioxide (CO2) and atomic oxygen to measure the rate and temperature...
- This Project Grant award of $594,076, provided by the National Science Foundation's Geosciences Program (CFDA 47.050), supports a collaborative research project to advance the understanding of solar flare energy deposition into the solar chromosphere. The research team from the New Jersey Institute of Technology will utilize high-resolution imaging spectroscopy from the Big Bear Solar Observatory's 1.6m Goode Solar Telescope (BBSO/GST) and state-of-the-art radiation hydrodynamic modeling to:...
- This $450,000 Project Grant award from the National Science Foundation (NSF) Division of Physics supports an effort to develop a comprehensive database of plasma photoionization processes with practical applications in fields such as combustion and high-speed aerodynamics. The "ECLIPSE: EXPLORING PHYSICS OF MULTIPHOTON IONIZATION USING THOMSON COHERENT MICROWAVE SCATTERING" project will utilize a novel Thomson in-phase coherent microwave scattering (TMS) technique to precisely...
- This $305,598 Project Grant from the National Science Foundation Division of Astronomical Sciences, under the Mathematical and Physical Sciences program (CFDA 47.049), will fund collaborative research between the New Jersey Institute of Technology and the University of Alabama, Huntsville to study solar flare-producing active regions. The researchers will leverage high-resolution observations from the Daniel K. Inouye Solar Telescope and other ground-based and space-based telescopes, along...
- This three-year, $369,415 National Science Foundation project grant funds the University of Wisconsin-Madison to generate accurate atomic transition probabilities and infrared spectra measurements to support the NSF Division of Astronomical Sciences' Apache Point Observatory Galactic Evolution Experiment (APOGEE) spectroscopic survey. Through its Mathematical and Physical Sciences program, NSF aims to advance these fields and strengthen the national science enterprise. Under this award, the...
- This $177,334 Project Grant from the National Science Foundation (NSF) under the Mathematical and Physical Sciences program (CFDA 47.049) will support imaging and spectral observations of the 2023 and 2024 total solar eclipses conducted by President and Trustees of Williams College. Key deliverables include high-resolution Fabry-Perot and Lyot/Halle filter observations of the solar corona, high-frequency (>1 Hz) power spectra measurements of coronal loops to study coronal heating...
- This $303,253 Project Grant awarded by the National Science Foundation's Geosciences Program (CFDA 47.050) to Montana State University aims to advance the understanding of solar flare heating mechanisms. The research team will conduct high-cadence, high-resolution observations of solar flares using the Goode Solar Telescope and upcoming X-ray instruments to study the temporal, spatial, and magnetic structures of the fundamental energy release processes, known as "elementary bursts."...
- This federal Project Grant award from the National Science Foundation's Mathematical and Physical Sciences (CFDA 47.049) program provides $247,157 to Northeastern University to conduct research on developing improved mirror coatings for gravitational wave detectors. The key objectives are to understand and reduce mechanical loss in amorphous metal-oxide coatings, and to develop and test crystalline coatings with lower thermal noise. This research aims to reduce a major barrier limiting the...
WE PROPOSE TO DEVELOP APERIODIC MULTILAYER COATINGS HAVING HIGH REFLECTANCE AT NORMAL INCIDENCE OVER A BROAD SPECTRAL BAND IN THE EXTREME ULTRAVIOLET (EUV) FOR SPECTROSCOPY OF THE SOLAR ATMOSPHERE. THE SPECTRAL REGION FROM APPROXIMATELY 17 NM TO 35 NM CONTAINS A NUMBER OF SCIENTIFICALLY IMPORTANT EMISSION LINES EMANATING FROM THE SOLAR CORONA AND TRANSITION REGION. THE REALIZATION OF BROADBAND EUV MULTILAYER COATINGS HAVING HIGH REFLECTANCE OVER ALL OR PART OF THIS BAND WILL ENABLE THE CONSTRUCTION OF HIGH-RESOLUTION SPECTROMETERS BASED ON NORMAL-INCIDENCE GRATINGS HAVING WIDE WAVELENGTH COVERAGE AND SENSITIVITY THAT IS SUFFICIENT TO SUPPORT THE EXPOSURE TIMES AND CADENCES NEEDED FOR FUTURE NASA SOLAR PHYSICS AND SPACE WEATHER MISSIONS. THE HINODE/EIS INSTRUMENT TARGETED THE SPECTRAL BAND FROM 25 NM TO 29 NM USING A NORMAL-INCIDENCE GRATING COATED WITH A PERIODIC SI/MO MULTILAYER. APERIODIC COATINGS DEVELOPED IN RECENT YEARS CAN NOW BE DESIGNED TO PROVIDE HIGH REFLECTANCE OVER A MUCH WIDER RANGE OF WAVELENGTHS. FURTHERMORE NEWLY DEVELOPED MG- AND AL-BASED MULTILAYER COATINGS HAVE BEEN DEMONSTRATED TO HAVE SIGNIFICANTLY HIGHER REFLECTANCE THAN SI/ MO MULTILAYERS IN THIS SPECTRAL REGION. WE THUS PROPOSE TO DEVELOP NEW MG- AND AL-BASED APERIODIC MULTILAYERS HAVING NEARLY FLAT RESPONSE OVER A MUCH WIDER WAVELENGTH BAND THAN CAN BE CAPTURED USING PERIODIC MULTILAYERS THEREBY ENABLING SIGNIFICANT INCREASES IN WAVELENGTH COVERAGE IN FUTURE SPECTROSCOPY INSTRUMENTS. THE PROPOSED RESEARCH WILL FOCUS ON SEVERAL NEW MG- AND AL-BASED MULTILAYER MATERIAL SYSTEMS THAT HAVE BEEN DEVELOPED OVER THE PAST DECADE INCLUDING THE THREE-MATERIAL SYSTEMS ZR/CO/MG SIC/MO/AL AND B4C/MO/AL. GOOD EUV PERFORMANCE AND STABILITY HAVE BEEN DEMONSTRATED ALREADY WITH PERIODIC (I.E. NARROW-BAND) COATINGS COMPRISING EACH OF THESE MATERIAL COMBINATIONS. WE WILL DEVELOP APERIODIC BROAD-BAND COATINGS USING THE SAME MATERIAL COMBINATIONS FOLLOWING A SYSTEMATIC EXPERIMENTAL WORK PLAN. CANDIDATE COATINGS WILL BE DEPOSITED BY MAGNETRON SPUTTERING AND COATING MICROSTRUCTURE STRESS ROUGHNESS EUV REFLECTANCE STABILITY AND OTHER RELEVANT PROPERTIES WILL BE FULLY CHARACTERIZED. THE EXPERIMENTAL WORK WILL BE CONDUCTED USING ESTABLISHED FACILITIES AND METHODS AND A SYSTEMATIC ITERATIVE APPROACH WILL BE FOLLOWED TO OPTIMIZE COATING PERFORMANCE. THE ANTICIPATED OUTCOME OF THE PROPOSED RESEARCH IS THE REALIZATION OF NEW BROAD-BAND MULTILAYER COATINGS OPERATING IN THE 17 35 NM BAND THAT WILL ENABLE THE CONSTRUCTION OF HIGH RESOLUTION SPECTROSCOPY INSTRUMENTS TARGETING THIS REGION OF THE EUV IN SUPPORT OF FUTURE NASA MISSIONS.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $0 | 3/9/23 | ||
| P00004 | Other Administrative Action | $0 | 3/9/23 | |
| Not listed | $0 | 2/7/22 | ||
| P00003 | Other Administrative Action | $0 | 2/7/22 | |
| Not listed | $362.9k | 9/20/21 |