The edge of the Milky Way's star-forming disc: Evidence from a 'U-shaped' stellar age profile

Fuente: arXiv
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Main Authors: Fiteni, Karl, Anderson, Stuart Robert, Debattista, Victor. P., Caruana, Joseph, Amarante, João A. S., Gough-Kelly, Steven, Eyer, Laurent, Silva, Leandro Beraldo e, Khachaturyants, Tigran, Cuomo, Virginia
Format: Preprint
Published: 2026
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author Fiteni, Karl
Anderson, Stuart Robert
Debattista, Victor. P.
Caruana, Joseph
Amarante, João A. S.
Gough-Kelly, Steven
Eyer, Laurent
Silva, Leandro Beraldo e
Khachaturyants, Tigran
Cuomo, Virginia
author_facet Fiteni, Karl
Anderson, Stuart Robert
Debattista, Victor. P.
Caruana, Joseph
Amarante, João A. S.
Gough-Kelly, Steven
Eyer, Laurent
Silva, Leandro Beraldo e
Khachaturyants, Tigran
Cuomo, Virginia
contents We leveraged reliable age and distance estimates from LAMOST-DR3 and APOGEE-DR17+AstroNN combined with \gaia\ data to perform a detailed analysis of the stellar age distribution in the Milky Way's (MW) outer disc using giant stars. Selecting stars near the midplane ($|z|<0.3$ kpc) on near-circular orbits ($λ_c > 0.9$), we analysed these independent datasets that employed different age-estimation methods. Our stringent kinematic selection criteria effectively exclude halo stars, ensuring that the observed age trends reflect genuine disc properties rather than contamination from older halo populations. Our results reveal a 'U-shaped' stellar age profile, where a negative gradient in the inner disc transitions to a positive gradient in the outer disc region. We identify the minimum in the stellar age profile at $R_{\rm min}=11.28 \pm 0.58$ kpc and $R_{\rm min}=12.15\pm 0.62$ kpc for the APOGEE-DR17 and LAMOST-DR3 samples, respectively. Using N-body+SPH simulations, we demonstrate that $R_{\rm min}$ corresponds to the break radius in the stellar density profile ($R_{\rm br}$), marking the edge of the Galaxy's star-forming disc. This break arises from a sharp decline in the star formation rate, with the outer positive age gradient produced by the radial migration of stars born inside $R_{\rm br}$. The cessation of star formation in the outer disc might be due to several mechanisms, including the dynamical influence of the bar's outer Lindblad resonance, the onset of the Galactic warp, or thermally regulated star formation. Overall, our results support the picture that the MW has a Type II (down-bending) stellar disc with a break at $R_{\rm br} \approx 11.28-12.15$ kpc, where the combination of star-formation cut-off and radial migration produces the observed U-shaped age profile.
format Preprint
id arxiv_https___arxiv_org_abs_2603_18737
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle The edge of the Milky Way's star-forming disc: Evidence from a 'U-shaped' stellar age profile
Fiteni, Karl
Anderson, Stuart Robert
Debattista, Victor. P.
Caruana, Joseph
Amarante, João A. S.
Gough-Kelly, Steven
Eyer, Laurent
Silva, Leandro Beraldo e
Khachaturyants, Tigran
Cuomo, Virginia
Astrophysics of Galaxies
We leveraged reliable age and distance estimates from LAMOST-DR3 and APOGEE-DR17+AstroNN combined with \gaia\ data to perform a detailed analysis of the stellar age distribution in the Milky Way's (MW) outer disc using giant stars. Selecting stars near the midplane ($|z|<0.3$ kpc) on near-circular orbits ($λ_c > 0.9$), we analysed these independent datasets that employed different age-estimation methods. Our stringent kinematic selection criteria effectively exclude halo stars, ensuring that the observed age trends reflect genuine disc properties rather than contamination from older halo populations. Our results reveal a 'U-shaped' stellar age profile, where a negative gradient in the inner disc transitions to a positive gradient in the outer disc region. We identify the minimum in the stellar age profile at $R_{\rm min}=11.28 \pm 0.58$ kpc and $R_{\rm min}=12.15\pm 0.62$ kpc for the APOGEE-DR17 and LAMOST-DR3 samples, respectively. Using N-body+SPH simulations, we demonstrate that $R_{\rm min}$ corresponds to the break radius in the stellar density profile ($R_{\rm br}$), marking the edge of the Galaxy's star-forming disc. This break arises from a sharp decline in the star formation rate, with the outer positive age gradient produced by the radial migration of stars born inside $R_{\rm br}$. The cessation of star formation in the outer disc might be due to several mechanisms, including the dynamical influence of the bar's outer Lindblad resonance, the onset of the Galactic warp, or thermally regulated star formation. Overall, our results support the picture that the MW has a Type II (down-bending) stellar disc with a break at $R_{\rm br} \approx 11.28-12.15$ kpc, where the combination of star-formation cut-off and radial migration produces the observed U-shaped age profile.
title The edge of the Milky Way's star-forming disc: Evidence from a 'U-shaped' stellar age profile
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2603.18737