English

A metallicity-spin temperature relation in damped Lyman-$\alpha$ systems

Cosmology and Nongalactic Astrophysics 2014-11-20 v1

Abstract

We report evidence for an anti-correlation between spin temperature TsT_s and metallicity [Z/H], detected at 3.6σ3.6 \sigma significance in a sample of 26 damped Lyman-α\alpha absorbers (DLAs) at redshifts 0.09<z<3.450.09 < z < 3.45. The anti-correlation is detected at 3σ3 \sigma significance in a sub-sample of 20 DLAs with measured covering factors, implying that it does not stem from low covering factors. We obtain Ts=(0.68±0.17)×[Z/H]+(2.13±0.21)T_s = (-0.68 \pm 0.17) \times {\rm [Z/H]} + (2.13 \pm 0.21) from a linear regression analysis. Our results indicate that the high TsT_s values found in DLAs do not arise from differences between the optical and radio sightlines, but are likely to reflect the underlying gas temperature distribution. The trend between TsT_s and [Z/H] can be explained by the larger number of radiation pathways for gas cooling in galaxies with high metal abundances, resulting in a high cold gas fraction, and hence, a low spin temperature. Conversely, low-metallicity galaxies have fewer cooling routes, yielding a larger warm gas fraction and a high TsT_s. Most DLAs at z>1.7z>1.7 have low metallicities, [Z/H] <1< -1, implying that the HI in high-zz DLAs is predominantly warm. The anti-correlation between TsT_s and [Z/H] is consistent with the presence of a mass-metallicity relation in DLAs, suggested by the tight correlation between DLA metallicity and the kinematic widths of metal lines. Most high-zz DLAs are likely to arise in galaxies with low masses (Mvir<1010.5MM_{\rm vir} < 10^{10.5} M_\odot), low metallicities ([Z/H]<1< -1, and low cold gas fractions.

Keywords

Cite

@article{arxiv.0909.2459,
  title  = {A metallicity-spin temperature relation in damped Lyman-$\alpha$ systems},
  author = {Nissim Kanekar and Alain Smette and Frank H. Briggs and Jayaram N. Chengalur},
  journal= {arXiv preprint arXiv:0909.2459},
  year   = {2014}
}

Comments

5 pages, 2 figures; accepted for publication in Astrophysical Journal Letters

R2 v1 2026-06-21T13:45:57.146Z