Unexpected shape of the primordial black hole mass function
arXiv:2412.07709 · doi:10.1103/k75n-3qz4
Abstract
In a Universe with nearly-Gaussian initial curvature perturbations, the abundance of primordial black holes can be derived from the curvature power spectrum. When the latter is enhanced within a narrow range around a characteristic scale, the resulting mass function has a single distinct peak, corresponding to Schwarzschild radii set by the horizon entry time of that scale. In contrast, we show (both numerically and by providing an analytic estimation) that a broad enhancement - such as a plateau bounded by infrared and ultraviolet scales - produces a bimodal mass function, with a primary peak close to the infrared scale. We find that the typical initial gravitational potential (compaction function), conditioned on meeting the threshold for critical collapse, is generated by a thin spherical shell with infrared radius and a thickness comparable to the ultraviolet scale. This suggests a higher-than-expected abundance of PBH originating from Type II initial fluctuations. Our results significantly impact overproduction bounds on the amplitude of the power spectrum, and tighten the viable mass range for primordial black holes as dark matter.
7 pages, 3 figures. v2: minor editing; v3: layout typos corrected
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Cited by in corpus (7)
- Primordial Black Hole Formation from Power Spectrum with Finite-width
- Threshold for PBH formation in the type-II region and its analytical estimation
- A new approach for simulating PBH formation from generic curvature fluctuations with the Misner-Sharp formalism
- Beware of the running when producing heavy primordial black holes
- Excursion-set for Primordial Black Holes I: white noise and moving barrier
- Effect of stochastic kicks on primordial black hole abundance and mass via the compaction function
- The Dark Side of the Moon: Listening to Scalar-Induced Gravitational Waves