Exploring memory-burdened primordial black holes with ultra-high-energy cosmic-rays
Antonio Ambrosone, Marco Chianese, Carmelo Evoli
astro-ph.HE, hep-ph
Submitted: 2026-08-17
Updated: 2026-08-18
Comments: 11 pages, 5 figures. Comments are welcome
License: http://creativecommons.org/licenses/by/4.0/
The gist: Quantum backreaction effects may quench Hawking evaporation through a ``memory burden'', allowing primordial black holes (PBHs) with formation masses well below 10 15 g to survive to the present and
Terminology
Abstract
Quantum backreaction effects may quench Hawking evaporation through a ``memory burden'', allowing primordial black holes (PBHs) with formation masses well below 10 15 g to survive to the present and contribute to the dark matter. We show that ultra-high-energy cosmic rays (UHECRs) provide a powerful and previously unexplored probe of this scenario. We compute the proton and neutron emission from memory-burdened PBHs, including the Galactic-halo contribution and the extragalactic proton component, and confront it with the Pierre Auger Observatory proton spectrum and its EeV neutron limits from the Galactic plane. This yields new constraints on the PBH dark-matter fraction as a function of the PBH formation mass and the evaporation-suppression parameter k. For k 3 the non-observation of ultra-high-energy protons leads to bounds competitive with those from UHE gamma rays, while neutron limits remain comparable to high-energy neutrino constraints. Our results highlights the key role of multi-messenger astronomy in constraining beyond-the-standard-model scenarios.
Sources
- High-energy gamma-ray emission from memory-burdened primordial black holes
- Light burden of memory: Constraining primordial black holes with high-energy neutrinos
- The energy spectrum of cosmic rays beyond the turn-down around $10^{17}$ eV as measured with the surface detector of the Pierre Auger Observatory
- The Cosmic Ray Energy Spectrum Observed with the Surface Detector of the Telescope Array Experiment
- Constraining Super-Heavy Dark Matter with the KM3-230213A Neutrino Event
- Constraints on heavy decaying dark matter with current gamma-ray measurements
- Cosmological implications of photon-flux upper limits at ultra-high energies in scenarios of Planckian-interacting massive particles for dark matter
- Limits to gauge coupling in the dark sector set by the non-observation of instanton-induced decay of Super-Heavy Dark Matter in the Pierre Auger Observatory data
- Revisiting ultrahigh-energy constraints on decaying super-heavy dark matter
- Diffuse flux of ultra-high energy photons from cosmic-ray interactions in the disk of the Galaxy and implications for the search for decaying super-heavy dark matter
- Super Heavy Dark Matter and UHECR Anisotropy at Low Energy
- Search for a diffuse flux of photons with energies above tens of PeV at the Pierre Auger Observatory
- Constraints on metastable superheavy dark matter coupled to sterile neutrinos with the Pierre Auger Observatory
- Testing effects of Lorentz invariance violation in the propagation of astroparticles with the Pierre Auger Observatory
- Probing super-heavy dark matter with ultra-high-energy gamma rays
- BlackHawk v2.0: A public code for calculating the Hawking evaporation spectra of any black hole distribution
- Physics Beyond the Standard Model with BlackHawk v2.0
- Primordial Black Holes as Dark Matter
- Primordial Black Holes as a dark matter candidate
- Constraints on Primordial Black Holes
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