Testing Chemical Tagging with LAMOST: Intrinsic Abundance Dispersion of Subgiant Stars in the Galactic Disk

Abstract The scatter in elemental abundances among stars of similar age and metallicity reflects chemical inhomogeneity in their birth environments, making abundance scatter a key observable for chemical-tagging studies of Galactic formation and evolution. Using a large sample of subgiant stars with precise ages and elemental abundances derived from LAMOST low-resolution spectra, we investigate the intrinsic chemical abundance scatter of the low-α thin disk near the solar neighborhood (7 < R < 10 kpc). We model the abundance ratio [X/Fe], for each of the 19 elements of concern, as a function of age, [Fe/H], and [Mg/Fe], and deduce the intrinsic dispersions with a forward modelling technique. Our results confirm previous findings that the intrinsic scatters are small, typically ≲ 0.05 dex, for light elements (C, Al), α-elements (O, Mg, Si, Ca, Ti), and iron-peak elements (Mn, Ni). A dedicated analysis of M67 yields similarly small scatter values for these elements, implying limited discriminatory power from light-element abundances alone. In contrast, neutron-capture elements exhibit substantially larger scatters, typically ≳0.1 dex, which are significantly larger than those of M67 member stars (~0.07 dex). In particular, our analysis suggests that the abundance variations of individual neutron-capture elements cannot be explained by a single tracer such as [Ba/Fe]. These findings clarify the utility of neutron-capture elements for chemical tagging and highlight the potential of low-resolution spectroscopy in such studies.

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Publication Details

Journal
Monthly Notices of the Royal Astronomical Society
Published
2026-09-08
DOI
https://doi.org/10.1093/mnras/stag1707
Primary Topic
Stellar, planetary, and galactic studies
Type
article
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Testing Chemical Tagging with LAMOST: Intrinsic Abundance Dispersion of Subgiant Stars in the Galactic Disk

Yaqian Wu, Ruizheng Jiang, Meng Zhang, Zhuohan Li et al.
Monthly Notices of the Royal Astronomical Society
Stellar, planetary, and galactic studies
article

Testing Chemical Tagging with LAMOST: Intrinsic Abundance Dispersion of Subgiant Stars in the Galactic Disk

Yaqian Wu, Ruizheng Jiang, Meng Zhang, Zhuohan Li, Maosheng Xiang, Shaolan Bi, Gang Zhao
article en

Abstract

Abstract The scatter in elemental abundances among stars of similar age and metallicity reflects chemical inhomogeneity in their birth environments, making abundance scatter a key observable for chemical-tagging studies of Galactic formation and evolution. Using a large sample of subgiant stars with precise ages and elemental abundances derived from LAMOST low-resolution spectra, we investigate the intrinsic chemical abundance scatter of the low-α thin disk near the solar neighborhood (7 < R < 10 kpc). We model the abundance ratio [X/Fe], for each of the 19 elements of concern, as a function of age, [Fe/H], and [Mg/Fe], and deduce the intrinsic dispersions with a forward modelling technique. Our results confirm previous findings that the intrinsic scatters are small, typically ≲ 0.05 dex, for light elements (C, Al), α-elements (O, Mg, Si, Ca, Ti), and iron-peak elements (Mn, Ni). A dedicated analysis of M67 yields similarly small scatter values for these elements, implying limited discriminatory power from light-element abundances alone. In contrast, neutron-capture elements exhibit substantially larger scatters, typically ≳0.1 dex, which are significantly larger than those of M67 member stars (~0.07 dex). In particular, our analysis suggests that the abundance variations of individual neutron-capture elements cannot be explained by a single tracer such as [Ba/Fe]. These findings clarify the utility of neutron-capture elements for chemical tagging and highlight the potential of low-resolution spectroscopy in such studies.

Monthly Notices of the Royal Astronomical Society
Chinese Academy of Sciences (CN), Beijing Normal University (CN), Purple Mountain Observatory (CN), Institute of Space Sciences (ES), Astronomy and Space (AU), National Astronomical Observatories (CN), University of Chinese Academy of Sciences (CN)
Reduced inequalities
Openalex Percentile: Top 10%
Stellar, planetary, and galactic studies
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