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Autores principales: Li, Sijia, Yu, Si-Yue, Ho, Luis C., Silverman, John D., Wang, Jing, Saintonge, Amelie, Yu, Niankun, Fei, Qinyue, Kashino, Daichi, Yu, Hao-ran
Formato: Preprint
Publicado: 2025
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Acceso en línea:https://arxiv.org/abs/2510.18764
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author Li, Sijia
Yu, Si-Yue
Ho, Luis C.
Silverman, John D.
Wang, Jing
Saintonge, Amelie
Yu, Niankun
Fei, Qinyue
Kashino, Daichi
Yu, Hao-ran
author_facet Li, Sijia
Yu, Si-Yue
Ho, Luis C.
Silverman, John D.
Wang, Jing
Saintonge, Amelie
Yu, Niankun
Fei, Qinyue
Kashino, Daichi
Yu, Hao-ran
contents The interstellar medium (ISM) in high-redshift galaxies exhibits significantly higher electron densities ($n_{\rm e}$) than in the local universe. To investigate the origin of this trend, we analyze a sample of 9590 centrally star-forming galaxies with stellar masses greater than $10^9\,M_\odot$ at redshifts $0.01 < z < 0.04$, selected from the Dark Energy Spectroscopic Instrument (DESI) Data Release 1. We derive electron densities from the [S II] $λ\lambda6716,6731$ doublet, measuring values of $n_{\rm e} = 30$-$400~{\rm cm^{-3}}$ at $z \approx 0$. We find a tight correlation between $n_{\rm e}$ and the star formation rate surface density ($Σ_{\rm SFR}$), which is well described by a broken power law. Above a threshold of $\log(Σ_{\rm SFR} / M_\odot\,{\rm yr^{-1}\,kpc^{-2}}) \ge -1.46$, the relation follows $n_{\rm e} = (233 \pm 13)\,Σ_{\rm SFR}^{0.49 \pm 0.02}$. Below this threshold, $n_{\rm e}$ remains approximately constant at $44 \pm 3~{\rm cm^{-3}}$. Remarkably, this relation remains consistent with measurements of galaxies at $z = 0.9$-$10.2$. By converting the observed redshift evolution of $Σ_{\rm SFR}$ into $n_{\rm e}$ evolution through our $n_{\rm e}$-$Σ_{\rm SFR}$ relation, we obtain $n_{\rm e} = 40(1+z)^{1.4}~{\rm cm^{-3}}$, consistent with previous direct observations. The $n_{\rm e}$-$Σ_{\rm SFR}$ relation likely arises because the high $Σ_{\rm SFR}$, fueled by dense cold gas or elevated efficiency, enhances radiative and mechanical feedback and produces dense ionized gas whose electron densities are further regulated by ambient pressure. We conclude that the redshift evolution of $n_{\rm e}$ primarily reflects the evolution of cold gas density and star formation activity over cosmic time.
format Preprint
id arxiv_https___arxiv_org_abs_2510_18764
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Linking Electron Density with Elevated Star Formation Activity from $z=0$ to $z=10$
Li, Sijia
Yu, Si-Yue
Ho, Luis C.
Silverman, John D.
Wang, Jing
Saintonge, Amelie
Yu, Niankun
Fei, Qinyue
Kashino, Daichi
Yu, Hao-ran
Astrophysics of Galaxies
The interstellar medium (ISM) in high-redshift galaxies exhibits significantly higher electron densities ($n_{\rm e}$) than in the local universe. To investigate the origin of this trend, we analyze a sample of 9590 centrally star-forming galaxies with stellar masses greater than $10^9\,M_\odot$ at redshifts $0.01 < z < 0.04$, selected from the Dark Energy Spectroscopic Instrument (DESI) Data Release 1. We derive electron densities from the [S II] $λ\lambda6716,6731$ doublet, measuring values of $n_{\rm e} = 30$-$400~{\rm cm^{-3}}$ at $z \approx 0$. We find a tight correlation between $n_{\rm e}$ and the star formation rate surface density ($Σ_{\rm SFR}$), which is well described by a broken power law. Above a threshold of $\log(Σ_{\rm SFR} / M_\odot\,{\rm yr^{-1}\,kpc^{-2}}) \ge -1.46$, the relation follows $n_{\rm e} = (233 \pm 13)\,Σ_{\rm SFR}^{0.49 \pm 0.02}$. Below this threshold, $n_{\rm e}$ remains approximately constant at $44 \pm 3~{\rm cm^{-3}}$. Remarkably, this relation remains consistent with measurements of galaxies at $z = 0.9$-$10.2$. By converting the observed redshift evolution of $Σ_{\rm SFR}$ into $n_{\rm e}$ evolution through our $n_{\rm e}$-$Σ_{\rm SFR}$ relation, we obtain $n_{\rm e} = 40(1+z)^{1.4}~{\rm cm^{-3}}$, consistent with previous direct observations. The $n_{\rm e}$-$Σ_{\rm SFR}$ relation likely arises because the high $Σ_{\rm SFR}$, fueled by dense cold gas or elevated efficiency, enhances radiative and mechanical feedback and produces dense ionized gas whose electron densities are further regulated by ambient pressure. We conclude that the redshift evolution of $n_{\rm e}$ primarily reflects the evolution of cold gas density and star formation activity over cosmic time.
title Linking Electron Density with Elevated Star Formation Activity from $z=0$ to $z=10$
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2510.18764