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Discovery of the local counterpart of disc galaxies at z > 4: The oldest thin disc of the Milky Way using Gaia-RVS

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arxiv 2402.00561 v2 pith:IJNNWPEI submitted 2024-02-01 astro-ph.GA

classification astro-ph.GA
keywords discstarsthingalaxiesmetal-poororbitsagesdiscovery
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abstract

JWST has recently detected numerous disc galaxies at high-redshifts and there have been observations of cold disc galaxies at z > 4 with ALMA. In the Milky Way, recent studies find metal-poor stars in cold disc orbits, suggesting an ancient disc. We investigated a sample of 565,606 stars from the hybrid-CNN analysis of the Gaia-DR3 RVS stars. The sample contains 8,500 stars with [Fe/H]<-1. For a subset of ~200,000 MSTO and subgiant stars we computed distances and ages using the StarHorse code with a mean precision of 1% and 12%, respectively. First, we confirm the existence of metal-poor stars in thin disc orbits - over 50% are older than 13 Gyr. Second, we report the discovery of the oldest thin disc of the Milky Way(MW), which extends across a wide range of metallicities, from metal-poor to super-solar stars. The metal-poor stars in disc orbits manifest as a readily visible tail of the metallicity distribution. The high-[{\alpha}/Fe] thick disc exhibits a vertical velocity dispersion of 35 km/s, while the thin disc shows 10 to 15 km/s lower at similar ages. Our old thin disc $\sigma_{V_z}$ appears similar to those estimated for the high-z disc galaxies. Third, we extend the [Y/Mg] chemical clock to the oldest ages and estimate a slope of -0.038 dex/Gyr. Finally, we confirm our discovery by showing that the splash includes high- and low-[{\alpha}/Fe] populations that are both old and extends to super-solar [Fe/H]. We find about 6 to 10% of the old thin disc was heated to thick disc orbits with the youngest splashed stars being 9 to 10 Gyrs. We conclude the MW thin disc forms <1 billion years from Big Bang, building up inside-out, preceding earlier estimates by about 4-5 billion years. Considering a massive merger event such as the GSE, a Splash is expected - we find a portion of the old thin disc is heated to thick disc velocities and the Splash extends to super-solar [Fe/H] regimes.

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Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. The Age-Thickness Relation as a Tracer of the Merger History of Disk Galaxies

    astro-ph.GA 2026-07 conditional novelty 6.0 of 10

    In TNG50 Milky Way analogues, the age–vertical thickness relation carries step-like merger signatures and localized flyby peaks, providing a positions-and-ages-only tracer of merger history.

  2. Tracing the early Milky Way thin disc with the Gaia-ESO Survey

    astro-ph.GA 2026-08 conditional novelty 5.0 of 10

    A single metal-poor, alpha-enhanced star with thin-disc-like kinematics is identified as a candidate relic of the early Milky Way disc.

  3. The Age-Thickness Relation of the Milky Way Disk: A Tracer of Galactic Merging History

    astro-ph.GA 2024-12 conditional novelty 5.0 of 10

    The Milky Way's disk thickness versus stellar age shows four bumps that the authors interpret as merger events, including the Gaia-Sausage-Enceladus merger at about 11.1 billion years ago.

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