English

Molecular gas in a gravitationally lensed galaxy group at $z = 2.9$

Astrophysics of Galaxies 2021-08-24 v1

Abstract

Most molecular gas studies of z>2.5z > 2.5 galaxies are of intrinsically bright objects, despite the galaxy population being primarily "normal" galaxies with less extreme star formation rates. Observations of normal galaxies at high redshift provide a more representative view of galaxy evolution and star formation, but such observations are challenging to obtain. In this work, we present ALMA 12CO(J=32)\rm ^{12}CO(J = 3 \rightarrow 2) observations of a sub-millimeter selected galaxy group at z=2.9z = 2.9, resulting in spectroscopic confirmation of seven images from four member galaxies. These galaxies are strongly lensed by the MS 0451.6-0305 foreground cluster at z=0.55z = 0.55, allowing us to probe the molecular gas content on levels of 1091010  M\rm 10^9-10^{10} \; M_\odot. Four detected galaxies have molecular gas masses of (0.213.1)×1010  M\rm (0.2-13.1) \times 10^{10} \; M_\odot, and the non-detected galaxies have inferred molecular gas masses of <8.0×1010  M\rm < 8.0 \times 10^{10} \; M_\odot. We compare these new data to a compilation of 546 galaxies up to z=5.3z = 5.3, and find that depletion times decrease with increasing redshift. We then compare the depletion times of galaxies in overdense environments to the field scaling relation from the literature, and find that the depletion time evolution is steeper for galaxies in overdense environments than for those in the field. More molecular gas measurements of normal galaxies in overdense environments at higher redshifts (z>2.5z > 2.5) are needed to verify the environmental dependence of star formation and gas depletion.

Keywords

Cite

@article{arxiv.2105.11572,
  title  = {Molecular gas in a gravitationally lensed galaxy group at $z = 2.9$},
  author = {Jeff Shen and Allison W. S. Man and Johannes Zabl and Zhi-Yu Zhang and Mikkel Stockmann and Gabriel Brammer and Katherine E. Whitaker and Johan Richard},
  journal= {arXiv preprint arXiv:2105.11572},
  year   = {2021}
}

Comments

20 pages, 8 figures, 5 tables. Accepted for publication in ApJ