Constraining the local burst rate density of primordial black holes with HAWC
- HAWC Collaboration,
- A. Albert(corresponding author)(Author),
- R. Alfaro(Author),
- C. Alvarez(Author),
- J. C. Arteaga-Velázquez(Author),
- K. P. Arunbabu(Author)
- Los Alamos National Laboratory,
- Universidad Nacional Autónoma de México,
- Universidad Autonoma de Chiapas,
- Universidad Michoacana de San Nicolas de Hidalgo,
- Pennsylvania State University,
- The Henryk Niewodniczanski Institute of Nuclear Physics of the Polish Academy of Sciences
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Abstract
Primordial Black Holes (PBHs) may have been created by density fluctuations in the early Universe and could be as massive as > 109 solar masses or as small as the Planck mass. It has been postulated that a black hole has a temperature inversely-proportional to its mass and will thermally emit all species of fundamental particles via Hawking Radiation. PBHs with initial masses of ∼ 5 × 1014 g (approximately one gigaton) should be expiring today with bursts of high-energy gamma radiation in the GeV-TeV energy range. The High Altitude Water Cherenkov (HAWC) Observatory is sensitive to gamma rays with energies of ∼300 GeV to past 100 TeV, which corresponds to the high end of the PBH burst spectrum. With its large instantaneous field-of-view of ∼ 2 sr and a duty cycle over 95%, the HAWC Observatory is well suited to perform an all-sky search for PBH bursts. We conducted a search using 959 days of HAWC data and exclude the local PBH burst rate density above 3400 pc-3 yr-1 at 99% confidence, the strongest limit on the local PBH burst rate density from any existing electromagnetic measurement.
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EnglishArticle number
026Journal (Volume, Issue Number)
Journal of Cosmology and Astroparticle Physics (Volume 2020, Issue 4)Publication milestones
- Published - 04/2020
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1475-7516Publication IDs
- Scopus: 85084408209
