English

Dominant Role of Coplanar Inflows in Driving Disk Evolution Revealed by Gas-Phase Metallicity Gradients

Astrophysics of Galaxies 2025-02-19 v1

Abstract

Using spatially resolved spectroscopic data from the MaNGA sample, we investigate the parameters influencing the radial gradients of gas-phase metallicity (log(O/H)\nabla\log(\mathrm{O/H})), to determine whether disk formation is primarily driven by coplanar gas inflow or by the independent evolution of distinct regions within the disk. Our results show that log(O/H)\nabla \log(\mathrm{O/H}) strongly correlates with local gas-phase metallicity at a given stellar mass, with steeper gradients observed in metal-poorer disks. This trend supports the coplanar gas inflow scenario, wherein the gas is progressively enriched by in situ star formation as it flows inward. In contrast, the radial gradient of stellar mass surface density shows very weak correlations with log(O/H)\nabla \log(\mathrm{O/H}), which is inconsistent with the independent evolution mode, where gas inflow, star formation, and metal enrichment occur independently within each annulus of the disk. Furthermore, we find that log(O/H)\nabla \log(\mathrm{O/H}) is also closely correlated with an indicator of local gas turbulence σgas/Re\sigma_{\mathrm{gas}}/R_{\mathrm{e}}, highlighting the competing roles of turbulence and coplanar inflow in shaping metallicity gradients. Our results provide indirect observational evidence supporting coplanar gas inflow as the driving mechanism for disk evolution.

Keywords

Cite

@article{arxiv.2502.12409,
  title  = {Dominant Role of Coplanar Inflows in Driving Disk Evolution Revealed by Gas-Phase Metallicity Gradients},
  author = {Cheqiu Lyu and Enci Wang and Hongxin Zhang and Yingjie Peng and Xin Wang and Haixin Li and Chengyu Ma and Haoran Yu and Zeyu Chen and Cheng Jia and Xu Kong},
  journal= {arXiv preprint arXiv:2502.12409},
  year   = {2025}
}

Comments

16 pages, 5+4 figures. Accepted by ApJL