Widespread rapid quenching at cosmic noon revealed by JWST deep spectroscopy
Abstract
Massive quiescent galaxies in the young universe are expected to be quenched rapidly, but it is unclear whether they all experience starbursts before quenching and what physical mechanism drives rapid quenching. We study 14 massive quiescent galaxies () at selected from a representative sample of the Blue Jay survey. We reconstruct their star formation histories by fitting spectral energy distribution models to the JWST/NIRSpec spectra. We find that massive quiescent galaxies can be split into three categories with roughly equal numbers of galaxies according to their SFHs: 1) Relatively old galaxies quenched at early epochs; 2) Galaxies that are rapidly and recently quenched after a flat or bursty formation history (depending on the assumed prior); 3) Galaxies that are rapidly and recently quenched after a major starburst. Most recently quenched galaxies show neutral gas outflows, probed by blueshifted absorption, and ionized gas emission, with line ratios consistent with active galactic nucleus (AGN) diagnostics. This suggests that AGN activity drives multi-phase gas outflows, leading to rapid quenching. By tracing back the SFHs of the entire sample, we predict the number density of massive quiescent galaxies at : . The two old massive quiescent galaxies in our sample appear to have extremely early formation and quenching (), possibly descendants of early post-starbursts at . These galaxies still show neutral gas reservoirs and weak H emission, perhaps because the ejective AGN feedback that caused rapid quenching has weakened over time.
Keywords
Cite
@article{arxiv.2404.17945,
title = {Widespread rapid quenching at cosmic noon revealed by JWST deep spectroscopy},
author = {Minjung Park and Sirio Belli and Charlie Conroy and Benjamin D. Johnson and Rebecca L. Davies and Joel Leja and Sandro Tacchella and J. Trevor Mendel and Chloë Benton and Letizia Bugiani and Razieh Emami and Amir H. Khoram and Yijia Li and Gabriel Maheson and Elijah P. Mathews and Rohan P. Naidu and Erica J. Nelson and Bryan A. Terrazas and Rainer Weinberger},
journal= {arXiv preprint arXiv:2404.17945},
year = {2024}
}
Comments
Published in ApJ