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August 20, 2026Monthly Notices of the Royal Astronomical Society0 citationsOpen Access

Modelling s-process chemical clocks: insights from high-precision Kepler data

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GCG. CasaliMMM Molero

Key Points

  • To test Galactic chemical evolution models using s-process chemical clocks against high-precision asteroseismic and spectroscopic observations of red giant stars.
  • Implemented a multi-zone Galactic chemical evolution (GCE) framework incorporating metallicity-dependent asymptotic giant branch (AGB) nucleosynthetic yields.
  • Evaluated model predictions against observational data from a sample of N=68 Kepler red giant stars with individual-mode asteroseismic ages and high-resolution spectroscopy.
  • Baseline models accurately reproduced [Zr/Ti] and high-α sequence trends across age and metallicity spaces.
  • Models systematically underestimated [Ce/Ti] at young stellar ages and intermediate metallicities, revealing a persistent enrichment deficit over the last ~6 Gyr of Galactic disc evolution.
  • Increasing second-peak yields from high-metallicity AGB stars only partially mitigated the discrepancy, indicating that simple yield adjustments alone cannot resolve the mismatch without accounting for stellar radial migration.

Abstract

Abstract We present Galactic chemical evolution (GCE) models for the chemical clocks Zr/Ti and Ce/Ti, tracing first- and second-peak s-process nucleosynthesis, and compare them with a high-precision sample of 68 Kepler red giant stars with asteroseismic ages from individual-mode frequencies and high-resolution spectroscopy. Using a multi-zone GCE framework, we explore variations in metallicity-dependent asymptotic giant branch (AGB) nucleosynthetic yields, including proposed enhancements to high-metallicity Ce production. Our baseline model reproduces Zr/Ti and the high-α sequence in both age and metallicity space, but systematically underestimates Ce/Ti at young ages and intermediate metallicities, indicating a persistent deficit in second-peak s-process enrichment over the last ∼6 Gyr of Galactic disc evolution. Increasing second-peak yields from high-metallicity AGB stars only partially reduces this discrepancy, suggesting that simple yield rescaling is insufficient and more fundamental revisions to s-process nucleosynthesis at high metallicity, alongside a self-consistent treatment of stellar dynamics, may be required. In fact, models reproduce abundance trends more tightly in metallicity than in age space, with additional age scatter partly attributed to radial migration. This Letter highlights the diagnostic power of precise asteroseismic ages for GCE studies and the limitations of current models in capturing the complex interplay between s-process nucleosynthesis and stellar dynamics.

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Cite This Study

Casali et al. (2026) studied this question.

synapsesocial.com/papers/6a86b57f8a91293e6a1ccd95https://doi.org/10.1093/mnras/stag1554
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