Cold Gas and Star Formation in the Phoenix Cluster with JWST
Abstract
We present integral field unit observations of the Phoenix Cluster with the JWST Mid-infrared Instrument's Medium Resolution Spectrometer (MIRI/MRS). We focus this study on the molecular gas, dust, and star formation in the brightest cluster galaxy (BCG). We use precise spectral modeling to produce maps of the silicate dust, molecular gas, and polycyclic aromatic hydrocarbons (PAHs) in the inner 50 kpc of the cluster. We measure the optical depth from silicates by comparing the observed H line ratios to those predicted by excitation models. We provide updated measurements of the total molecular gas mass of which agrees with CO-based estimates, providing an estimate of the CO-to-H conversion factor of ; an updated stellar mass of ; and star formation rates averaged over 10 and 100 Myr of , and , respectively. The H emission seems to be powered predominantly by shocks and star formation within the central kpc, induced by stellar feedback and radio jets from the active galactic nucleus. Additionally, we find nearly an order of magnitude drop in the star formation rates estimated by PAH fluxes in cool core BCGs compared to field galaxies, suggesting that hot particles from the intracluster medium are destroying PAH grains even in the centralmost 10s of kpc.
Keywords
Cite
@article{arxiv.2501.08527,
title = {Cold Gas and Star Formation in the Phoenix Cluster with JWST},
author = {Michael Reefe and Michael McDonald and Marios Chatzikos and Jerome Seebeck and Richard Mushotzky and Sylvain Veilleux and Steven Allen and Matthew Bayliss and Michael Calzadilla and Rebecca Canning and Megan Donahue and Benjamin Floyd and Massimo Gaspari and Julie Hlavacek-Larrondo and Brian McNamara and Helen Russell and Arnab Sarkar and Keren Sharon and Taweewat Somboonpanyakul},
journal= {arXiv preprint arXiv:2501.08527},
year = {2025}
}
Comments
25 pages, 18 figures, 2 tables. Accepted for publication in ApJ