Primordial non-gaussianity up to all orders: theoretical aspects and implications for primordial black hole models
Giacomo Ferrante, Gabriele Franciolini, Antonio Junior Iovino, Alfredo, Urbano

TL;DR
This paper develops a comprehensive formalism for calculating primordial black hole abundance considering all orders of local non-Gaussianity, highlighting the limitations of perturbative methods especially for broad spectra and exploring implications for gravitational wave signals.
Contribution
It introduces an exact, non-perturbative approach to include arbitrary local non-Gaussianity in PBH abundance calculations, surpassing previous quadratic and cubic approximations.
Findings
Perturbative methods are unreliable for broad spectra.
Non-perturbative calculations are essential for accurate PBH abundance estimates.
NG effects significantly impact gravitational wave predictions.
Abstract
We develop an exact formalism for the computation of the abundance of primordial black holes (PBHs) in the presence of local non-gaussianity (NG) in the curvature perturbation field. For the first time, we include NG going beyond the widely used quadratic and cubic approximations, and consider a completely generic functional form. Adopting threshold statistics of the compaction function, we address the computation of the abundance both for narrow and broad power spectra. While our formulas are generic, we discuss explicit examples of phenomenological relevance considering the physics case of the curvaton field. We carefully assess under which conditions the conventional perturbative approach can be trusted. In the case of a narrow power spectrum, this happens only if the perturbative expansion is pushed beyond the quadratic order (with the optimal order of truncation that depends on the…
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Taxonomy
TopicsCosmology and Gravitation Theories · Black Holes and Theoretical Physics · Galaxies: Formation, Evolution, Phenomena
