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Characterisation of local halo building blocks: Thamnos and Sequoia

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arxiv 2408.13763 v2 pith:RO7BXPOJ submitted 2024-08-25 astro-ph.GA

classification astro-ph.GA
keywords sequoiadistributionsthamnosgaiahalostarscontaminationgalaxy
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A crucial aspect of galaxy evolution is the pace at which galaxies build up their mass. We investigate this hierarchical assembly by uncovering and timing accretion events experienced by our Galaxy. In the Milky Way, accreted debris has been identified in the local halo, thanks to Gaia. We combine this dataset with advances in colour-magnitude diagram (CMD) fitting to characterise the Galaxy's building blocks based on their age and metallicity distributions. Here, we focus on the retrograde halo, specifically Thamnos and Sequoia. This study, part of the ChronoGal project, uses CMDft.Gaia to fit absolute CMDs of stars from these sub-structures, extracted from a local 5D Gaia DR3 dataset. By comparing their age and metallicity distributions with expected contamination from Gaia Enceladus (GE) and low-energy (LE) in situ populations, we identify distinct stellar population signatures for Sequoia and Thamnos. Both have metal-poor populations ([Fe/H] -2.5 to -1.5 dex) distinct from contamination. Their age distributions reveal the build-up pace of their progenitors: half of Sequoia's stars formed by 12 Gyr ago, while Thamnos appears slightly older and declines faster, forming half its stars by 12.3 Gyr. GE and LE populations formed half their stars by 12.1 Gyr and 12.9 Gyr, respectively. Caution is needed interpreting these distributions, especially for Sequoia, due to small sample sizes that can shift ages younger by up to 1 Gyr. Nonetheless, accounting for this and residual contamination, we conclude Thamnos, Gaia Enceladus, and Sequoia are predominantly old and were accreted within 1-2 Gyr of each other. We present, for the first time, age distributions for the retrograde halo sub-structures Sequoia and Thamnos, derived from photometric data using CMD fitting that also yields metallicity distributions consistent with spectroscopy.

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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. On the chaos induced by the Galactic bar on the orbits of nearby halo stars

    astro-ph.GA 2025-05 conditional novelty 6.0 of 10

    More than half of nearby halo stars are chaotic due to the Galactic bar, blurring substructure identifications in (E,Lz,L⊥) space and favoring the Jacobi energy.

  2. CNN-Derived Elemental Abundances of LAMOST DR10 Giants: Implications for Galactic Substructures

    astro-ph.GA 2025-06 conditional novelty 5.0 of 10

    A CNN transfers APOGEE abundance labels to 1.1 million LAMOST giants, producing a public catalog and a tentative chemical classification of the PG1 and PG2 substructures.

  3. A Novel Approach to Identifying Substructures Through Analysis of Metallicity Distribution Functions

    astro-ph.GA 2025-08 reject novelty 4.0 of 10

    Combining MDF peaks with orbital phase space among retrograde, low-inclination halo stars, the authors identify four substructures (LRS 1-4) and claim LRS 3 as new, plus an embedded stream LRS 2B.

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