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arXiv · 2606.26320

Probing the molecular gas content of galaxies in an over-dense group at z~0.7: a test case for environmental quenching

Abstract

To probe the impact of group environment on molecular gas reservoirs at intermediate redshift, we observed the CO(2-1) emission in the galaxy group COSMOS-Gr30 at $z \sim 0.7$ with IRAM's NOEMA and 30m telescopes. This dense environment, located at the intersection of large-scale cosmic web filaments, has the specificity to host a large ($\sim 10^{4}$ kpc$^{2}$) ionized gas structure revealed by MUSE. We detect CO emission in four galaxies of the group at $\mathrm{S/N} > 5$ and derive upper limits for the remaining group members with secure spectroscopic redshifts. Stacked measurements indicate that group galaxies exhibit on average molecular gas contents reduced by $\sim 0.5$ dex relative to field scaling relations, corresponding to gas fractions that are $20\%$ to $40\%$ of those found in typical main-sequence galaxies. Although the uncertainties are significant, this suggests that environmental processes efficiently deplete molecular gas reservoirs in the galaxies of this group. The 30m observations place an upper limit on the molecular gas associated with the extended ionized structure, $M_{\rm gas} < 2 \times 10^{10} \rm M_\odot$, implying that less than a third of the gas in the intra-group medium is in a cold, star-forming phase. Together, these results contribute to show how environmental mechanisms in dense group environments act to remove or suppress molecular gas within galaxies, capturing quenching processes in action.

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Jonathan Freundlich, Benoît Epinat, Thierry Contini, Philippe Salomé, Françoise Combes, Baptiste Jego, Davor Krajnović, Wilfried Mercier, Constanza Muñoz López, Matthieu Béthermin, Leindert Boogaard, Rodrigo Herrera-Camus, Diana Ismail, Fangzhou Jiang, Katarina Kraljic, Florent Renaud, Sandro Tacchella. 2026-06-24. Probing the molecular gas content of galaxies in an over-dense group at z~0.7: a test case for environmental quenching. https://arxiv.org/abs/2606.26320

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