Lyman-$α$ feedback prevails at Cosmic Dawn: Implications for the first galaxies, stars, and star clusters

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Hauptverfasser: Nebrin, Olof, Smith, Aaron, Lorinc, Kevin, Hörnquist, Johan, Larson, Åsa, Mellema, Garrelt, Giri, Sambit K.
Format: Preprint
Veröffentlicht: 2024
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author Nebrin, Olof
Smith, Aaron
Lorinc, Kevin
Hörnquist, Johan
Larson, Åsa
Mellema, Garrelt
Giri, Sambit K.
author_facet Nebrin, Olof
Smith, Aaron
Lorinc, Kevin
Hörnquist, Johan
Larson, Åsa
Mellema, Garrelt
Giri, Sambit K.
contents Radiation pressure from Lyman-$α$ (Ly$α$) scattering is a potentially dominant form of early stellar feedback, capable of injecting up to $\sim 100 \, \times$ more momentum into the interstellar medium (ISM) than UV continuum radiation pressure and stellar winds. Ly$α$ feedback is particularly strong in dust-poor environments and is thus especially important during the formation of the first stars and galaxies. As upcoming galaxy formation simulations incorporate Ly$α$ feedback, it is crucial to consider processes that can limit it to avoid placing $Λ$CDM in apparent tension with recent \textit{JWST} observations indicating efficient star formation at Cosmic Dawn. We study Ly$α$ feedback using a novel analytical Ly$α$ radiative transfer solution that includes the effects of continuum absorption, gas velocity gradients, Ly$α$ destruction (e.g. by $2p \rightarrow 2s$ transitions), ISM turbulence, and atomic recoil. We verify our solution for uniform clouds using extensive Monte Carlo radiative transfer (MCRT) tests, and resolve a previous discrepancy between analytical and MCRT predictions. We then study the sensitivity of Ly$α$ feedback to the aforementioned effects. While these can dampen Ly$α$ feedback by a factor $\lesssim \textrm{few} \times 10$, we find it remains $\gtrsim 5 - 100 \, \times$ stronger than direct radiation pressure and therefore cannot be neglected. We provide an accurate fit for the Ly$α$ force multiplier $M_{\rm F}$, suitable for implementation in subgrid models for galaxy formation simulations. Our findings highlight the critical role of Ly$α$ feedback in regulating star formation at Cosmic Dawn, and underscore the necessity of incorporating it into simulations to accurately model early galaxy evolution.
format Preprint
id arxiv_https___arxiv_org_abs_2409_19288
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Lyman-$α$ feedback prevails at Cosmic Dawn: Implications for the first galaxies, stars, and star clusters
Nebrin, Olof
Smith, Aaron
Lorinc, Kevin
Hörnquist, Johan
Larson, Åsa
Mellema, Garrelt
Giri, Sambit K.
Astrophysics of Galaxies
Cosmology and Nongalactic Astrophysics
Atomic Physics
Radiation pressure from Lyman-$α$ (Ly$α$) scattering is a potentially dominant form of early stellar feedback, capable of injecting up to $\sim 100 \, \times$ more momentum into the interstellar medium (ISM) than UV continuum radiation pressure and stellar winds. Ly$α$ feedback is particularly strong in dust-poor environments and is thus especially important during the formation of the first stars and galaxies. As upcoming galaxy formation simulations incorporate Ly$α$ feedback, it is crucial to consider processes that can limit it to avoid placing $Λ$CDM in apparent tension with recent \textit{JWST} observations indicating efficient star formation at Cosmic Dawn. We study Ly$α$ feedback using a novel analytical Ly$α$ radiative transfer solution that includes the effects of continuum absorption, gas velocity gradients, Ly$α$ destruction (e.g. by $2p \rightarrow 2s$ transitions), ISM turbulence, and atomic recoil. We verify our solution for uniform clouds using extensive Monte Carlo radiative transfer (MCRT) tests, and resolve a previous discrepancy between analytical and MCRT predictions. We then study the sensitivity of Ly$α$ feedback to the aforementioned effects. While these can dampen Ly$α$ feedback by a factor $\lesssim \textrm{few} \times 10$, we find it remains $\gtrsim 5 - 100 \, \times$ stronger than direct radiation pressure and therefore cannot be neglected. We provide an accurate fit for the Ly$α$ force multiplier $M_{\rm F}$, suitable for implementation in subgrid models for galaxy formation simulations. Our findings highlight the critical role of Ly$α$ feedback in regulating star formation at Cosmic Dawn, and underscore the necessity of incorporating it into simulations to accurately model early galaxy evolution.
title Lyman-$α$ feedback prevails at Cosmic Dawn: Implications for the first galaxies, stars, and star clusters
topic Astrophysics of Galaxies
Cosmology and Nongalactic Astrophysics
Atomic Physics
url https://arxiv.org/abs/2409.19288