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February 5, 20260 citations

Primordial black holes as dark matter candidates

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CCC. Casanueva-VillarrealNPN. PadillaPTP. B. Tissera

Key Points

  • This research aims to explore the contribution of primordial black holes (PBHs) to cosmic radiation backgrounds and their viability as dark matter candidates.
  • Modelled PBH accretion using analytical frameworks like eADAF and ADAF.
  • Calculated contributions to cosmic X-ray, Lyman-Werner, and radio backgrounds.
  • Examined variations in models including halo density profiles and gas velocities.
  • Compared findings against observational constraints and theoretical limits.
  • PBHs can account for up to 99% of the soft X-ray background for a mass of 1 M⊙.
  • Maximum dark matter fraction for PBHs constrained to values like 7 × 10−3 for 1 M⊙.
  • Contributions to the hard X-ray background are approximately 33% for 1 M⊙.
  • Exclusion of certain model subregions can relax constraints significantly.

Abstract

Aims. This study investigates the role of primordial black holes (PBHs) in shaping cosmic radiation backgrounds, specifically the cosmic X-ray background (CXB), the Lyman-Werner background (LWB), and the cosmic radio background (CRB). It assesses their viability as dark matter (DM) candidates based on both observational constraints and theoretical limits. Methods. PBH accretion is modelled using analytical frameworks, including electron advection-dominated accretion flows (eADAF), standard ADAF, luminous hot accretion flows (LHAF), and thin discs. Contributions to the CXB, LWB, and CRB are calculated for PBHs in both halos and the intergalactic medium (IGM). To test robustness, we explore variations in the model, such as halo density profiles, gas velocities and emission models. The results are compared against observational limits and theoretical thresholds across these backgrounds, constraining the PBH fraction as DM for masses between 1 and 100 M⊙. Results. Our findings suggest that PBHs can contribute up to 99, 93, 80, and 91 per cent of the observed non-source soft X-ray background for masses of 1 M⊙, 10 M⊙, 33 M⊙, and 100 M⊙, respectively, while contributing approximately 33, 37, 33, and 39 per cent to the hard X-ray background. These contributions constrain the maximum DM fraction in the form of PBHs to 7 × 10−3, 6 × 10−4, 6 × 10−4, and 7 × 10−4 for the respective masses under the baseline model. These constraints align with the limits imposed by the LWB, ensuring that PBHs do not disrupt molecular cooling or early star formation under these conditions. However, explaining the observed radio background excess at z = 0 and the EDGES signal would require DM fractions composed of PBHs significantly larger than those allowed by these constraints. For 1 M⊙, excluding subregimes in the ADAF framework relaxes the constraint to 3 × 10−2, highlighting the impact of the modelled accretion physics on the derived limits. Variations in model assumptions, such as halo density profiles, gas velocities, emission models, and modifications to the halo mass function, introduce slight changes in the predicted backgrounds.

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Cite This Study

Casanueva-Villarreal et al. (2025) studied this question.

synapsesocial.com/papers/698434cff1d9ada3c1fb374chttps://doi.org/10.1051/0004-6361/202554032/pdf
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