Primordial black holes from stochastic tunnelling
Chiara Animali, Vincent Vennin

TL;DR
This paper investigates the formation of primordial black holes during stochastic tunnelling in inflation, using the stochastic-$ abla N$ formalism to analyze non-Gaussian fluctuations and their dependence on potential barrier properties.
Contribution
It introduces a detailed analysis of PBH production during stochastic tunnelling with new insights into how barrier properties influence PBH abundance.
Findings
PBH abundance depends exponentially or super-exponentially on barrier height.
Flat potential regions allow previous flat quantum well results to apply.
Deep false vacua often involve slow-roll violations, suggesting the need for extended models.
Abstract
If the inflaton gets trapped in a local minimum of its potential shortly before the end of inflation, it escapes by building up quantum fluctuations in a process known as stochastic tunnelling. In this work we study cosmological fluctuations produced in such a scenario, and how likely they are to form Primordial Black Holes (PBHs). This is done by using the stochastic- formalism, which allows us to reconstruct the highly non-Gaussian tails of the distribution function of the number of -folds spent in the false-vacuum state. We explore two different toy models, both analytically and numerically, in order to identify which properties do or do not depend on the details of the false-vacuum profile. We find that when the potential barrier is small enough compared to its width, , the potential can be approximated as being flat between…
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Taxonomy
TopicsQuantum Mechanics and Applications · Complex Systems and Time Series Analysis · Advanced Thermodynamics and Statistical Mechanics
