Dissecting the massive pristine, neutral gas reservoir of a remarkably bright galaxy at z = 14.179

Fuente: arXiv
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Autori principali: Heintz, Kasper E., Pollock, Clara, Witstok, Joris, Carniani, Stefano, Hainline, Kevin N., D'Eugenio, Francesco, Terp, Chamilla, Saxena, Aayush, Watson, Darach
Natura: Preprint
Pubblicazione: 2025
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author Heintz, Kasper E.
Pollock, Clara
Witstok, Joris
Carniani, Stefano
Hainline, Kevin N.
D'Eugenio, Francesco
Terp, Chamilla
Saxena, Aayush
Watson, Darach
author_facet Heintz, Kasper E.
Pollock, Clara
Witstok, Joris
Carniani, Stefano
Hainline, Kevin N.
D'Eugenio, Francesco
Terp, Chamilla
Saxena, Aayush
Watson, Darach
contents At cosmic dawn, the first stars and galaxies are believed to form from and be deeply embedded in clouds of dense, pristine gas. Here we present a study of the JWST/NIRSpec data of the most distant, spectroscopically confirmed galaxy observed to date, JADES-GS-z14-0 (GS-z14 for short), at $z=14.179$, combined with recent far-infrared measurements of the [OIII]-$88μ$m and [CII]-$158μ$m line transitions and underlying dust-continuum emission. Based on the observed prominent damped Lyman-$α$ (DLA) absorption profile, we determine a substantial neutral atomic hydrogen (HI) column density, $\log (N_{\rm HI} / {\rm cm^{-2}}) = 22.27^{+0.08}_{-0.09}$, consistent with previous estimates though seemingly at odds with the dynamical and gas mass of the galaxy. Using various independent but complementary approaches, considering the implied neutral gas mass from the DLA measurement, the star-formation rate surface density, and the metal abundance, we demonstrate that the total gas mass of GS-z14 is of the order $\log (M_{\rm gas} / M_\odot) = 9.8\pm 0.3$. This implies a substantial gas mass fraction, $f_{\rm gas} \gtrsim 0.9$ and that the bulk of the interstellar medium (ISM) is in the form of HI. We show that the derived gas mass is fully consistent with the non-detection of [CII]-$158μ$m, assuming an appropriate scaling to the neutral gas. The low dust-to-gas ratio, $A_V/N_{\rm HI} = (1.3\pm 0.6)\times 10^{-23}$\,mag\,cm$^2$, derived in the line-of-sight through the DLA further indicates that the absorbing gas is more pristine than the central, star-forming regions probed by the [OIII]-$88μ$m emission. These results highlight the implications for far-infrared line-detection searchers attainable with ALMA and demonstrate that the bright, relatively massive galaxy GS-z14 at $z=14.179$ is deeply embedded in a substantial, pristine HI gas reservoir dominating its baryonic matter content.
format Preprint
id arxiv_https___arxiv_org_abs_2502_06016
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Dissecting the massive pristine, neutral gas reservoir of a remarkably bright galaxy at z = 14.179
Heintz, Kasper E.
Pollock, Clara
Witstok, Joris
Carniani, Stefano
Hainline, Kevin N.
D'Eugenio, Francesco
Terp, Chamilla
Saxena, Aayush
Watson, Darach
Astrophysics of Galaxies
Cosmology and Nongalactic Astrophysics
At cosmic dawn, the first stars and galaxies are believed to form from and be deeply embedded in clouds of dense, pristine gas. Here we present a study of the JWST/NIRSpec data of the most distant, spectroscopically confirmed galaxy observed to date, JADES-GS-z14-0 (GS-z14 for short), at $z=14.179$, combined with recent far-infrared measurements of the [OIII]-$88μ$m and [CII]-$158μ$m line transitions and underlying dust-continuum emission. Based on the observed prominent damped Lyman-$α$ (DLA) absorption profile, we determine a substantial neutral atomic hydrogen (HI) column density, $\log (N_{\rm HI} / {\rm cm^{-2}}) = 22.27^{+0.08}_{-0.09}$, consistent with previous estimates though seemingly at odds with the dynamical and gas mass of the galaxy. Using various independent but complementary approaches, considering the implied neutral gas mass from the DLA measurement, the star-formation rate surface density, and the metal abundance, we demonstrate that the total gas mass of GS-z14 is of the order $\log (M_{\rm gas} / M_\odot) = 9.8\pm 0.3$. This implies a substantial gas mass fraction, $f_{\rm gas} \gtrsim 0.9$ and that the bulk of the interstellar medium (ISM) is in the form of HI. We show that the derived gas mass is fully consistent with the non-detection of [CII]-$158μ$m, assuming an appropriate scaling to the neutral gas. The low dust-to-gas ratio, $A_V/N_{\rm HI} = (1.3\pm 0.6)\times 10^{-23}$\,mag\,cm$^2$, derived in the line-of-sight through the DLA further indicates that the absorbing gas is more pristine than the central, star-forming regions probed by the [OIII]-$88μ$m emission. These results highlight the implications for far-infrared line-detection searchers attainable with ALMA and demonstrate that the bright, relatively massive galaxy GS-z14 at $z=14.179$ is deeply embedded in a substantial, pristine HI gas reservoir dominating its baryonic matter content.
title Dissecting the massive pristine, neutral gas reservoir of a remarkably bright galaxy at z = 14.179
topic Astrophysics of Galaxies
Cosmology and Nongalactic Astrophysics
url https://arxiv.org/abs/2502.06016