Many quiescent galaxies discovered in the early Universe by \textit{JWST} raise fundamental questions on when and how these galaxies became and stayed quenched. Making use of the latest version of the semi-analytic model GAEA that provides good agreement with the observed quenched fractions up to z∼3, we make predictions for the expected fractions of quiescent galaxies up to z∼7 and analyze the main quenching mechanism. We find that in a simulated box of 685Mpc on a side, the first quenched massive (M⋆∼1011M⊙), Milky Way mass, and low mass (M⋆∼109.5M⊙ ) galaxies appear at z∼4.5, z∼6.2, and before z=7. Most quenched galaxies identified at early redshifts remain quenched for more than 1 Gyr. Independently of galaxy stellar mass, the dominant quenching mechanism at high redshift is accretion disk feedback (quasar winds) from a central massive black hole, which is triggered by mergers in massive and MW-mass galaxies, and by disk instabilities in low-mass galaxies. Environmental stripping becomes increasingly more important at lower redshift.
@article{arxiv.2402.01314,
title = {The first quenched galaxies, when and how?},
author = {Lizhi Xie and Gabriella De Lucia and Fabio Fontanot and Michaela Hirschmann and Yannick M Bahé and Michael L. Balogh and Adam Muzzin and Benedetta Vulcani and Devontae C. Baxter and Ben Forrest and Gillian Wilson and Gregory H. Rudnick and M. C. Cooper and Umberto Rescigno},
journal= {arXiv preprint arXiv:2402.01314},
year = {2024}
}