Gas-phase metallicity gradients in galaxies at $z \sim 6-8$

Fuente: arXiv
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Main Authors: Venturi, G., Carniani, S., Parlanti, E., Kohandel, M., Curti, M., Pallottini, A., Vallini, L., Arribas, S., Bunker, A. J., Cameron, A. J., Castellano, M., Ferrara, A., Fontana, A., Gallerani, S., Gelli, V., Maiolino, R., Ntormousi, E., Pacifici, C., Pentericci, L., Salvadori, S., Vanzella, E.
Format: Preprint
Published: 2024
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author Venturi, G.
Carniani, S.
Parlanti, E.
Kohandel, M.
Curti, M.
Pallottini, A.
Vallini, L.
Arribas, S.
Bunker, A. J.
Cameron, A. J.
Castellano, M.
Ferrara, A.
Fontana, A.
Gallerani, S.
Gelli, V.
Maiolino, R.
Ntormousi, E.
Pacifici, C.
Pentericci, L.
Salvadori, S.
Vanzella, E.
author_facet Venturi, G.
Carniani, S.
Parlanti, E.
Kohandel, M.
Curti, M.
Pallottini, A.
Vallini, L.
Arribas, S.
Bunker, A. J.
Cameron, A. J.
Castellano, M.
Ferrara, A.
Fontana, A.
Gallerani, S.
Gelli, V.
Maiolino, R.
Ntormousi, E.
Pacifici, C.
Pentericci, L.
Salvadori, S.
Vanzella, E.
contents The study of gas-phase metallicity and its spatial distribution at high redshift is crucial to understand the processes that shaped the growth and evolution of galaxies in the early Universe. Here we study the spatially resolved metallicity in three systems at $z\sim6-8$, namely A2744-YD4, BDF-3299, and COSMOS24108, with JWST NIRSpec IFU low-resolution ($R\sim100$) spectroscopic observations. These are among the highest-$z$ sources in which metallicity gradients have been probed so far. Each of these systems hosts several spatial components in the process of merging within a few kpc, identified from the rest-frame UV and optical stellar continuum and ionised gas emission line maps. The sources have heterogeneous properties, with stellar masses log($M_*/M_\odot) \sim 7.6-9.3$, star formation rates (SFRs) $\sim1-15$ $M_\odot$ yr$^{-1}$, and gas-phase metallicities 12+log(O/H) $\sim 7.7-8.3$, which exhibit a large scatter within each system. Their properties are generally consistent with those of the highest-$z$ samples to date ($z\sim3-10$), though the sources in A2744-YD4 and COSMOS24108 are at the high end of the mass-metallicity relation (MZR) defined by the $z\sim3-10$ sources. Moreover, the targets in this work follow the predicted slope of the MZR at $z\sim 6-8$ from most cosmological simulations. The gas-phase metallicity gradients are consistent with being flat in the main sources of each system. Flat metallicity gradients are thought to arise from gas mixing processes on galaxy scales, such as mergers or galactic outflows and SN winds driven by intense stellar feedback, which wash out any gradient formed in the galaxy. The existence of flat gradients at $z\sim6-8$ sets also important constraints on cosmological simulations and chemical evolution models, whose predictions on the cosmic evolution of metallicity gradients differ significantly, but are mostly limited to $z<3$ so far.
format Preprint
id arxiv_https___arxiv_org_abs_2403_03977
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Gas-phase metallicity gradients in galaxies at $z \sim 6-8$
Venturi, G.
Carniani, S.
Parlanti, E.
Kohandel, M.
Curti, M.
Pallottini, A.
Vallini, L.
Arribas, S.
Bunker, A. J.
Cameron, A. J.
Castellano, M.
Ferrara, A.
Fontana, A.
Gallerani, S.
Gelli, V.
Maiolino, R.
Ntormousi, E.
Pacifici, C.
Pentericci, L.
Salvadori, S.
Vanzella, E.
Astrophysics of Galaxies
The study of gas-phase metallicity and its spatial distribution at high redshift is crucial to understand the processes that shaped the growth and evolution of galaxies in the early Universe. Here we study the spatially resolved metallicity in three systems at $z\sim6-8$, namely A2744-YD4, BDF-3299, and COSMOS24108, with JWST NIRSpec IFU low-resolution ($R\sim100$) spectroscopic observations. These are among the highest-$z$ sources in which metallicity gradients have been probed so far. Each of these systems hosts several spatial components in the process of merging within a few kpc, identified from the rest-frame UV and optical stellar continuum and ionised gas emission line maps. The sources have heterogeneous properties, with stellar masses log($M_*/M_\odot) \sim 7.6-9.3$, star formation rates (SFRs) $\sim1-15$ $M_\odot$ yr$^{-1}$, and gas-phase metallicities 12+log(O/H) $\sim 7.7-8.3$, which exhibit a large scatter within each system. Their properties are generally consistent with those of the highest-$z$ samples to date ($z\sim3-10$), though the sources in A2744-YD4 and COSMOS24108 are at the high end of the mass-metallicity relation (MZR) defined by the $z\sim3-10$ sources. Moreover, the targets in this work follow the predicted slope of the MZR at $z\sim 6-8$ from most cosmological simulations. The gas-phase metallicity gradients are consistent with being flat in the main sources of each system. Flat metallicity gradients are thought to arise from gas mixing processes on galaxy scales, such as mergers or galactic outflows and SN winds driven by intense stellar feedback, which wash out any gradient formed in the galaxy. The existence of flat gradients at $z\sim6-8$ sets also important constraints on cosmological simulations and chemical evolution models, whose predictions on the cosmic evolution of metallicity gradients differ significantly, but are mostly limited to $z<3$ so far.
title Gas-phase metallicity gradients in galaxies at $z \sim 6-8$
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2403.03977