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January 18, 2026Monthly Notices of the Royal Astronomical Society0 citationsOpen Access

Revisiting the Radial Metallicity Gradient-Age Relation in the Milky Way’s Thin and Thick Disks

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DCD. ChenJSJuntai ShenCWChun Wang

Key Points

  • The aim is to understand the relationship between metallicity gradients and stellar age in the Milky Way's thin and thick disks.
  • Analyzed spectroscopic data from LAMOST DR8.
  • Used asteroseismology to calibrate stellar ages.
  • Investigated the metallicity gradient-age relation in both thin and thick disks.
  • Found a steadily flattening metallicity gradient in the thin disk.
  • Confirmed a positive metallicity gradient of ∼0.013 dex kpc−1 in the thick disk.
  • Suggested that radial migration and interstellar medium changes influenced the thin disk's flattening.

Abstract

Abstract Galactic disks typically exhibit a negative radial metallicity gradient, indicating faster enrichment in the inner regions. Recent studies report that this gradient becomes flatter with increasing stellar age in the Milky Way’s (MW) thin disk, while the thick disk exhibits a mildly positive gradient across all ages. In this work, we revisit the metallicity gradient–age relation (MGAR) in both the thin and thick disks of the MW, using spectroscopic data from LAMOST DR8 and stellar ages calibrated with asteroseismology. Our results show a steadily flattening MGAR in the thin disk and confirm a positive gradient ∼0.013 dex kpc−1 in the thick disk. The flattening in the thin disk may be caused by large-scale radial migration induced by transient spiral arms, or by a time-dependent steepening of the interstellar medium (ISM) metallicity gradient as suggested by recent FIRE2 simulations. The positive gradient in the thick disk may reflect early enrichment of the outer regions by strong feedback or starburst-driven outflows in a turbulent, gas-rich proto-disk. These findings suggest distinct chemodynamical evolution paths for the MW’s thin and thick disks and provide valuable constraints for future models of Galactic chemical evolution.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/696c776ceb60fb80d1395be7https://doi.org/10.1093/mnras/stag035
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