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From FFB starbursts at cosmic dawn to quenching at cosmic morning: Hi-z galaxy bimodality

  • Avishai Dekel*
  • , Nir Mandelker
  • , Zhaozhou Li
  • , Zhiyuan Yao
  • , Bocheng Zhu
  • , Sharon Lapiner
  • , Dhruba Dutta Chowdhury
  • , Omri Ginzburg
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

3 Scopus citations

Abstract

We propose a mass-dependent bimodality in the early evolution of galaxies. The massive track connects the superbright galaxies at cosmic dawn (z > 8) to the supermassive quiescent galaxies and black holes (BHs) at cosmic morning (z~4–7). The dark-matter haloes > 1010.5M at z=10 are expected to undergo feedback-free starbursts (FFB) with high star formation efficiency in dense star clusters within compact galaxies. The less massive haloes avoid FFB and form stars gradually under stellar feedback, possibly leading to the peak star-forming galaxies at cosmic noon (z~1–3). The FFB and non-FFB haloes originate from > 4σ and 2–3σ density peaks, respectively. The post-FFB galaxies quench their star formation soon after the FFB phase and remain quiescent due to (a) gas depletion by the FFB starbursts and outflows, (b) compaction events driven by angular-momentum loss in colliding streams within the high-sigma-peak FFB haloes, (c) turbulent circumgalactic medium (CGM) that suppresses feeding by cold streams, and (d) BH feedback, being a key for complete quenching. BH feedback is enhanced by FFB-driven BH seeding and growth. It seems capable of disrupting the streams by generating CGM turbulence or photoheating, but this remains an open challenge. The cosmic-morning quiescent galaxies are expected to be massive, compact, showing signatures of compaction, outflows and active galactic nucleus (AGN), with a comoving number density ~10-5, Mpc-3, comparable to the superbright galaxies at cosmic dawn and the AGN at cosmic morning. Their UV luminosity function is predicted to peak about Muv~–22 and contribute ~10 per cent of the galaxies there.

Original languageEnglish
Pages (from-to)160-180
Number of pages21
JournalMonthly Notices of the Royal Astronomical Society
Volume544
Issue number1
DOIs
StatePublished - 1 Nov 2025

Bibliographical note

Publisher Copyright:
© The Author(s) 2025. Published by Oxford University Press on behalf of Royal Astronomical Society.

Keywords

  • galaxies: active
  • galaxies: evolution
  • galaxies: formation
  • galaxies: haloes
  • galaxies: high-redshift
  • galaxies: interactions

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