The DORCHA suite: nature, nurture, and the phase space distribution of the Milky Way's high redshift progenitors today
arXiv:2506.14016 · doi:10.1093/mnras/stag292
Abstract
Where in the present-day Milky Way should we search for the remnants of its earliest stars? We address this question using the DORCHA (Gaelic for Dark; DUR-uh-khuh) suite: a set of 25 high-resolution, dark-matter-only cosmological zoom-in simulations of Milky Way analogue (MWA) haloes evolved to . Of these, 15 are isolated and the rest are in pairs, similar to the MW and M31. By identifying and tagging the most bound material in high-redshift () progenitor haloes -- those likely to host early star formation -- we track the present-day phase-space distribution of this ancient component. We find that this material is highly centrally concentrated at , with 90 -- 100 per cent residing within . It exhibits steep density profiles (), low velocity dispersions (), and radially biased orbits ( for ), consistent with a relaxed, centrally embedded population. These results hold across haloes with diverse formation histories and environments, suggesting that the dynamical signature of early progenitors is robust to later mergers and interactions. Our findings imply that the fossil record of the first generations of stars -- including Population III and extremely metal-poor stars -- should be sought in the innermost regions of the Milky Way, where they retain distinctive kinematic imprints. While these stellar populations may overlap, we caution that low metallicity does not uniquely identify ancient stars, nor vice versa. The DORCHA suite thus provides a physically motivated baseline for interpreting observations from Galactic Archaeology surveys targeting the bulge and inner halo.
MNRAS published version, 12 (+2) figures; data products at http://solas-sims.github.io/data_products/
References in corpus (25)
- Array Programming with NumPy
- The Gaia mission
- Cosmology at Low Frequencies: The 21 cm Transition and the High-Redshift Universe
- The GALAH Survey: Scientific Motivation
- Simulating cosmic structure formation with the GADGET-4 code
- Streams, substructures and the early history of the Milky Way
- Stress Testing CDM with High-redshift Galaxy Candidates
- From dawn till disk: Milky Way's turbulent youth revealed by the APOGEE+Gaia data
- The oldest and most metal poor stars in the APOSTLE Local Group simulations
- The Pristine Inner Galaxy Survey (PIGS) I: Tracing the kinematics of metal-poor stars in the Galactic bulge
- A tale of two populations: surviving and destroyed dwarf galaxies and the build up of the Milky Way's stellar halo
- GASTRO library I: the simulated chemodynamical properties of several GSE-like stellar halos
- The Gaia-ESO Survey: the most metal-poor stars in the Galactic bulge
- Fossil remnants of reionization in the halo of the Milky Way
- The COMBS Survey -- II. Distinguishing the Metal-Poor Bulge from the Halo Interlopers
- Starbursts in low-mass haloes at Cosmic Dawn. I. The critical halo mass for star formation
- The COMBS survey I: Chemical Origins of Metal-Poor Stars in the Galactic Bulge
- The Pristine Inner Galaxy Survey (PIGS) V: a chemo-dynamical investigation of the early assembly of the Milky Way with the most metal-poor stars in the bulge
- Metallicity distributions of halo stars: do they trace the Galactic accretion history?
- Milky Way-est: Cosmological Zoom-in Simulations with Large Magellanic Cloud and Gaia-Sausage-Enceladus Analogs
- EDGE: The emergence of dwarf galaxy scaling relations from cosmological radiation-hydrodynamics simulations
- On the accuracy of dark matter halo merger trees and the consequences for semi-analytic models of galaxy formation
- On the Edge: the relation between stellar and dark matter haloes of Milky Way-mass galaxies
- The Three Hundred Project: deducing the stellar splashback structure of galaxy clusters from their orbiting profiles
- MEGATRON: how the first stars can create an iron metallicity plateau in the smallest dwarf galaxies