Temporarily quiescent galaxies at cosmic dawn: probing bursty star formation

Fuente: arXiv
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Main Authors: Gelli, Viola, Pallottini, Andrea, Salvadori, Stefania, Ferrara, Andrea, Mason, Charlotte, Carniani, Stefano, Ginolfi, Michele
Format: Preprint
Published: 2025
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author Gelli, Viola
Pallottini, Andrea
Salvadori, Stefania
Ferrara, Andrea
Mason, Charlotte
Carniani, Stefano
Ginolfi, Michele
author_facet Gelli, Viola
Pallottini, Andrea
Salvadori, Stefania
Ferrara, Andrea
Mason, Charlotte
Carniani, Stefano
Ginolfi, Michele
contents The bursty, time-variable nature of star formation in the first billion years, as revealed by JWST, drives phases of temporary quiescence in low-mass galaxies that quench after starbursts. These galaxies provide unique probes of the burstiness of early star formation and its underlying physical processes. Using the SERRA cosmological zoom-in simulations, we analyze over 200 galaxies with $M_\star<10^{9.5}\rm M_\odot$ at $z\sim 6-8$, finding that most experience quiescent phases driven by stellar feedback, with minimal influence from environmental effects. The fraction of temporarily quiescent galaxies increases with decreasing mass and luminosity, representing the dominant population at $M_\star<10^8\rm M_\odot$ and $M_{UV}>-17$. By forward modeling their spectral energy distributions, we show that they are faint ($\langle M_{UV}\rangle = -15.6$ for $M_\star=10^{8}\rm M_\odot$), have strong Balmer breaks ($> 0.5$) and no emission lines. Comparing our predicted fractions with JWST results, we find similar luminosity-dependent trends; however, the observed fractions of temporarily quiescent galaxies at $M_{UV}\sim-20$ to $-19$ are higher, suggesting that stronger feedback or additional mechanisms beyond supernovae may be at play. We propose searching for F200W drop-outs and satellites in the proximity ($<5^{\prime\prime}$) of massive ($>10^{10}\rm M_\odot$) galaxies as effective strategies to uncover the hidden majority of faint ($M_{UV}>-17$), temporarily quiescent systems, crucial for constraining early feedback processes in low-mass galaxies.
format Preprint
id arxiv_https___arxiv_org_abs_2501_16418
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Temporarily quiescent galaxies at cosmic dawn: probing bursty star formation
Gelli, Viola
Pallottini, Andrea
Salvadori, Stefania
Ferrara, Andrea
Mason, Charlotte
Carniani, Stefano
Ginolfi, Michele
Astrophysics of Galaxies
The bursty, time-variable nature of star formation in the first billion years, as revealed by JWST, drives phases of temporary quiescence in low-mass galaxies that quench after starbursts. These galaxies provide unique probes of the burstiness of early star formation and its underlying physical processes. Using the SERRA cosmological zoom-in simulations, we analyze over 200 galaxies with $M_\star<10^{9.5}\rm M_\odot$ at $z\sim 6-8$, finding that most experience quiescent phases driven by stellar feedback, with minimal influence from environmental effects. The fraction of temporarily quiescent galaxies increases with decreasing mass and luminosity, representing the dominant population at $M_\star<10^8\rm M_\odot$ and $M_{UV}>-17$. By forward modeling their spectral energy distributions, we show that they are faint ($\langle M_{UV}\rangle = -15.6$ for $M_\star=10^{8}\rm M_\odot$), have strong Balmer breaks ($> 0.5$) and no emission lines. Comparing our predicted fractions with JWST results, we find similar luminosity-dependent trends; however, the observed fractions of temporarily quiescent galaxies at $M_{UV}\sim-20$ to $-19$ are higher, suggesting that stronger feedback or additional mechanisms beyond supernovae may be at play. We propose searching for F200W drop-outs and satellites in the proximity ($<5^{\prime\prime}$) of massive ($>10^{10}\rm M_\odot$) galaxies as effective strategies to uncover the hidden majority of faint ($M_{UV}>-17$), temporarily quiescent systems, crucial for constraining early feedback processes in low-mass galaxies.
title Temporarily quiescent galaxies at cosmic dawn: probing bursty star formation
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2501.16418