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Implications of stochastic effects for primordial black hole production in ultra-slow-roll inflation

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Implications of stochastic effects for primordial black hole production in ultra-slow-roll inflation. / Figueroa, Daniel G.; Raatikainen, Sami; Räsänen, Syksy et al.
In: Journal of Cosmology and Astroparticle Physics, Vol. 2022, No. 5, 027, 16.05.2022.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Figueroa, DG, Raatikainen, S, Räsänen, S & Tomberg, E 2022, 'Implications of stochastic effects for primordial black hole production in ultra-slow-roll inflation', Journal of Cosmology and Astroparticle Physics, vol. 2022, no. 5, 027. https://doi.org/10.1088/1475-7516/2022/05/027

APA

Figueroa, D. G., Raatikainen, S., Räsänen, S., & Tomberg, E. (2022). Implications of stochastic effects for primordial black hole production in ultra-slow-roll inflation. Journal of Cosmology and Astroparticle Physics, 2022(5), Article 027. https://doi.org/10.1088/1475-7516/2022/05/027

Vancouver

Figueroa DG, Raatikainen S, Räsänen S, Tomberg E. Implications of stochastic effects for primordial black hole production in ultra-slow-roll inflation. Journal of Cosmology and Astroparticle Physics. 2022 May 16;2022(5):027. doi: 10.1088/1475-7516/2022/05/027

Author

Figueroa, Daniel G. ; Raatikainen, Sami ; Räsänen, Syksy et al. / Implications of stochastic effects for primordial black hole production in ultra-slow-roll inflation. In: Journal of Cosmology and Astroparticle Physics. 2022 ; Vol. 2022, No. 5.

Bibtex

@article{4494d8461b6646ce8543149fbed1b34d,
title = "Implications of stochastic effects for primordial black hole production in ultra-slow-roll inflation",
abstract = "We study the impact of stochastic noise on the generation of primordial black hole (PBH) seeds in ultra-slow-roll (USR) inflation with numerical simulations. We consider the non-linearity of the system by consistently taking into account the noise dependence on the inflaton perturbations, while evolving the perturbations on the coarse-grained background affected by the noise. We capture in this way the non-Markovian nature of the dynamics, and demonstrate that non-Markovian effects are subleading. Using the ΔN formalism, we find the probability distribution P(R) of the comoving curvature perturbation R. We consider inflationary potentials that fit the CMB and lead to PBH dark matter with i) asteroid, ii) solar, or iii) Planck mass, as well as iv) PBHs that form the seeds of supermassive black holes. We find that stochastic effects enhance the PBH abundance by a factor of O(10)-o O(108), depending on the PBH mass. We also show that the usual approximation, where stochastic kicks depend only on the Hubble rate, either underestimates or overestimates the abundance by orders of magnitude, depending on the potential. We evaluate the gauge dependence of the results, discuss the quantum-to-classical transition, and highlight open issues of the application of the stochastic formalism to USR inflation.",
keywords = "dark matter theory, inflation, massive black holes, primordial black holes",
author = "Figueroa, {Daniel G.} and Sami Raatikainen and Syksy R{\"a}s{\"a}nen and Eemeli Tomberg",
year = "2022",
month = may,
day = "16",
doi = "10.1088/1475-7516/2022/05/027",
language = "English",
volume = "2022",
journal = "Journal of Cosmology and Astroparticle Physics",
issn = "1475-7516",
publisher = "IOP Publishing",
number = "5",

}

RIS

TY - JOUR

T1 - Implications of stochastic effects for primordial black hole production in ultra-slow-roll inflation

AU - Figueroa, Daniel G.

AU - Raatikainen, Sami

AU - Räsänen, Syksy

AU - Tomberg, Eemeli

PY - 2022/5/16

Y1 - 2022/5/16

N2 - We study the impact of stochastic noise on the generation of primordial black hole (PBH) seeds in ultra-slow-roll (USR) inflation with numerical simulations. We consider the non-linearity of the system by consistently taking into account the noise dependence on the inflaton perturbations, while evolving the perturbations on the coarse-grained background affected by the noise. We capture in this way the non-Markovian nature of the dynamics, and demonstrate that non-Markovian effects are subleading. Using the ΔN formalism, we find the probability distribution P(R) of the comoving curvature perturbation R. We consider inflationary potentials that fit the CMB and lead to PBH dark matter with i) asteroid, ii) solar, or iii) Planck mass, as well as iv) PBHs that form the seeds of supermassive black holes. We find that stochastic effects enhance the PBH abundance by a factor of O(10)-o O(108), depending on the PBH mass. We also show that the usual approximation, where stochastic kicks depend only on the Hubble rate, either underestimates or overestimates the abundance by orders of magnitude, depending on the potential. We evaluate the gauge dependence of the results, discuss the quantum-to-classical transition, and highlight open issues of the application of the stochastic formalism to USR inflation.

AB - We study the impact of stochastic noise on the generation of primordial black hole (PBH) seeds in ultra-slow-roll (USR) inflation with numerical simulations. We consider the non-linearity of the system by consistently taking into account the noise dependence on the inflaton perturbations, while evolving the perturbations on the coarse-grained background affected by the noise. We capture in this way the non-Markovian nature of the dynamics, and demonstrate that non-Markovian effects are subleading. Using the ΔN formalism, we find the probability distribution P(R) of the comoving curvature perturbation R. We consider inflationary potentials that fit the CMB and lead to PBH dark matter with i) asteroid, ii) solar, or iii) Planck mass, as well as iv) PBHs that form the seeds of supermassive black holes. We find that stochastic effects enhance the PBH abundance by a factor of O(10)-o O(108), depending on the PBH mass. We also show that the usual approximation, where stochastic kicks depend only on the Hubble rate, either underestimates or overestimates the abundance by orders of magnitude, depending on the potential. We evaluate the gauge dependence of the results, discuss the quantum-to-classical transition, and highlight open issues of the application of the stochastic formalism to USR inflation.

KW - dark matter theory

KW - inflation

KW - massive black holes

KW - primordial black holes

U2 - 10.1088/1475-7516/2022/05/027

DO - 10.1088/1475-7516/2022/05/027

M3 - Journal article

AN - SCOPUS:85130989005

VL - 2022

JO - Journal of Cosmology and Astroparticle Physics

JF - Journal of Cosmology and Astroparticle Physics

SN - 1475-7516

IS - 5

M1 - 027

ER -