English

On the Chemical and Structural Evolution of the Galactic Disk

Astrophysics of Galaxies 2015-06-19 v1

Abstract

We study the detailed properties of the radial metallicity gradient in the stellar disk of our Galaxy to constrain its chemical and structural evolution. For this purpose we select and analyze \sim 18,500 disk stars taken from two datasets, the Sloan Digital Sky Survey (SDSS) and the High-Accuracy Radial velocity Planetary Searcher (HARPS). On these surveys we examine the metallicity gradient, Δ\Delta[Fe/H]/ΔRg\Delta R_{\rm g}, along the guiding-center radii, RgR_{\rm g}, of stars and its dependence on the [α\alpha/Fe] ratios, to infer the original metallicity distribution of the gas disk from which those stars formed and its time evolution. In both sample sources, the thick-disk candidate stars characterized by high [α\alpha/Fe] ratios ([α\alpha/Fe] >> 0.3 in SDSS, [α\alpha/Fe] >> 0.2 in HARPS) are found to show a positive Δ\Delta[Fe/H]/ΔRg\Delta R_{\rm g}, whereas the thin-disk candidate stars characterized by lower [α\alpha/Fe] ratios show a negative one. Furthermore, we find that the relatively young thin-disk population characterized by much lower [α\alpha/Fe] ratios ([α\alpha/Fe] << 0.2 in SDSS, [α\alpha/Fe] << 0.1 in HARPS) shows notably a flattening Δ\Delta[Fe/H]/ΔRg\Delta R_{\rm g} with decreasing [α\alpha/Fe], in contrast to the old one with higher [α\alpha/Fe] ratios ([α\alpha/Fe] \sim 0.2 in SDSS, [α\alpha/Fe] \sim 0.1 in HARPS). The possible implication for early disk evolution is discussed, in the context of galaxy formation accompanying the rapid infall of primordial gas on the inner disk region, which can generate a positive metallicity gradient, and the subsequent chemical evolution of the disk, which results in a flattening effect of a metallicity gradient at later epochs.

Keywords

Cite

@article{arxiv.1405.0405,
  title  = {On the Chemical and Structural Evolution of the Galactic Disk},
  author = {Daisuke Toyouchi and Masashi Chiba},
  journal= {arXiv preprint arXiv:1405.0405},
  year   = {2015}
}

Comments

10 pages, 7 figures, Accepted for publication in ApJ

R2 v1 2026-06-22T04:04:42.717Z