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January 23, 2026The European Physical Journal C0 citationsOpen Access

Primordial black holes within Higgs hybrid metric-Palatini approach

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BABrahim AsfourFBFarida BargachYLYahya Ladghami

Key Points

  • The central aim is to explore the production of primordial black holes during the radiation-dominated era using the Higgs hybrid metric-Palatini approach.
  • Analyzed density perturbations during the radiation era.
  • Utilized the Higgs hybrid metric-Palatini model for non-minimal coupling of the inflaton field and Palatini curvature.
  • Studied the primordial curvature power spectrum to assess PBH formation.
  • Examined mass variance and mass fraction related to PBHs.
  • Compared findings against observational constraints.
  • Identified a significant enhancement in the primordial curvature power spectrum at small scales.
  • Determined that primordial black holes can constitute a fraction or totality of dark matter, influenced by the coupling constant and e-folds.
  • Mass variance and fraction functions are consistent with current observational limits.

Abstract

Abstract In this paper, we investigate the production of primordial black holes (PBHs) during the radiation-dominated era. The collapse of significant density perturbations originating from large primordial scalar fluctuations generated during inflation can lead to the formation of primordial black holes. In our study, we adopt the Higgs hybrid metric-Palatini model as our framework, in which the inflaton field and the Palatini curvature are non-minimally coupled. To achieve our objective, we analyze the behavior of the primordial curvature power spectrum, which exhibits a large enhancement at small scales corresponding to large wavenumbers k. Furthermore, we examine the probability of PBHs formation by studying the mass variance, (M₏₁₇) σ (M PBH), and the mass fraction of the total energy density collapsing into PBHs, (M₏₁₇) β (M PBH). The evolution of both functions is consistent with current observational constraints. Finally, we investigate the abundance of primordial black holes as a dark matter candidate. We found that they can account for the totality or a fraction of the current dark matter content, depending primarily on the values of the coupling constant and the e-folds number.

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Cite This Study

Asfour et al. (2026) studied this question.

synapsesocial.com/papers/69730eabc8125b09b0d1e7e6https://doi.org/10.1140/epjc/s10052-026-15298-8
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