Ultralight Black Holes as Sources of High-Energy Particles
arXiv:2410.07037 · doi:10.1016/j.dark.2025.102034
Abstract
The \textit{memory burden} effect, the idea that the amount of information stored within a system contributes to its stabilization, is particularly relevant for systems with a large information storage capacity, such as black holes. In these objects, the evaporation process halts, at the latest, once approximately half of the initial mass has been radiated away. As a result, light primordial black holes (PBHs) with mass , which are traditionally assumed to have fully evaporated by the present time, may instead survive and constitute viable dark matter candidates. Ongoing mergers of such PBHs would give rise to ``young'' black holes that resume their evaporation, emitting ultrahigh-energy particles potentially detectable by current experiments. The resulting emission spectrum would be thermal across all Standard Model particle species, offering a clear and distinctive signature. We demonstrate that, if the memory burden effect activates after PBHs have lost around half of their initial mass, current measurements of the neutrino flux at Earth place strong constraints on such dark matter candidates for . This suggests that the memory burden must set in at earlier stages of evaporation. Unlike existing bounds, our results depend solely on the mass of the remnant, and not on model-dependent details of the stabilized phase. We also discuss the potential for refining these constraints through observations of gamma rays, cosmic rays, and gravitational waves.
7 pages, 3 figures. Published version. Updated reference list, adopted merger rate clarified, typo on the detectability of neutrinos at IceCube fixed, numerical factors in analysis corrected
References in corpus (40)
- The merger rate of primordial-black-hole binaries
- Improved Characterization of the Astrophysical Muon-Neutrino Flux with 9.5 Years of IceCube Data
- Detection of a particle shower at the Glashow resonance with IceCube
- Measurement of the Anisotropy of Cosmic Ray Arrival Directions with IceCube
- Primordial Black Hole Dark Matter and the LIGO/Virgo observations
- Hunt for Light Primordial Black Hole Dark Matter with Ultra-High-Frequency Gravitational Waves
- Ultra-High-Energy Cosmic Rays: The Intersection of the Cosmic and Energy Frontiers
- Potential PeVatron supernova remnant G106.3+2.7 seen in the highest-energy gamma rays
- Breakdown of Hawking Evaporation opens new Mass Window for Primordial Black Holes as Dark Matter Candidate
- Observation of Small-scale Anisotropy in the Arrival Direction Distribution of TeV Cosmic Rays with HAWC
- Baryogenesis from Hawking Radiation
- Primordial black hole constraints with Hawking radiation -- a review
- Prospects for probing gravitational waves from primordial black hole binaries
- The Minimum Testable Abundance of Primordial Black Holes at Future Gravitational-Wave Detectors
- KASCADE-Grande Limits on the Isotropic Diffuse Gamma-Ray Flux between 100 TeV and 1 EeV
- Baryogenesis, Primordial Black Holes and MHz-GHz Gravitational Waves
- All-Sky Measurement of the Anisotropy of Cosmic Rays at 10 TeV and Mapping of the Local Interstellar Magnetic Field
- A search for photons with energies above eV using hybrid data from the low-energy extensions of the Pierre Auger Observatory
- Black Hole Macro-Quantumness
- Quantum effects on the evaporation of PBHs: contributions to dark matter
- Probing modified Hawking evaporation with gravitational waves from the primordial black hole dominated universe
- Constraining Primordial Black Hole Fraction at the Galactic Centre using radio observational data
- The Interplay between the Dark Matter Axion and Primordial Black Holes
- Close encounters of the primordial kind: a new observable for primordial black holes as dark matter
- Axion-like particles from primordial black holes shining through the Universe
- Primordial Black Hole Baryogenesis
- Memory burden effect mimics reheating signatures on SGWB from ultra-low mass PBH domination
- Limits on light primordial black holes from high-scale leptogenesis
- Cavity Detection of Gravitational Waves: Where Do We Stand?
- Light burden of memory: Constraining primordial black holes with high-energy neutrinos
- Gravitational Baryogenesis and Dark Matter from Light Black Holes
- Black Hole Evaporation Beyond the Standard Model of Particle Physics
- Induced Gravitational Waves probing Primordial Black Hole Dark Matter with Memory Burden
- Vortices in Black Holes
- Constraining the primordial black hole abundance through Big-Bang nucleosynthesis
- How Special Are Black Holes? Correspondence with saturons in generic theories
- The Timescales of Quantum Breaking
- Impact of memory-burdened black holes on primordial gravitational waves in light of Pulsar Timing Array
- Primordial Black Holes in the Solar System
- The Global Network of Cavities to Search for Gravitational Waves (GravNet): A novel scheme to hunt gravitational waves signatures from the early universe
Cited by in corpus (11)
- Ultra-High-Energy Neutrinos from Primordial Black Holes
- Neutrinos from Primordial Black Holes in Theories with Extra Dimensions
- Primordial regular black holes as all the dark matter. III. Covariant canonical quantum gravity models
- Can a Breakdown of Hawking Evaporation Open a New Mass Window for Primordial Black Holes as Dark Matter?
- Primordial Black Holes Evaporating before Big Bang Nucleosynthesis
- Explaining the PeV Neutrino Fluxes at KM3NeT and IceCube with Quasi-Extremal Primordial Black Holes
- Immortality through the dark forces: Dark-charge primordial black holes as dark matter candidates
- Exploring ultra-high energy neutrino experiments through the lens of the transport equation
- Microscopic primordial black holes as macroscopic dark matter from large extra dimensions
- Memory burden effect of regular primordial black holes
- Superluminal constraints from ultra-high-energy neutrino events