Characterizing the velocity anisotropy of the Milky Way's stellar halo

Fuente: arXiv
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Autori principali: Barbosa, F. O., Pérez-Villegas, A., Rossi, S., Santucci, R. M., Aguilar, L., Perottoni, H. D., Limberg, G., Borbolato, L., Nogueira-Santos, J. V.
Natura: Preprint
Pubblicazione: 2026
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author Barbosa, F. O.
Pérez-Villegas, A.
Rossi, S.
Santucci, R. M.
Aguilar, L.
Perottoni, H. D.
Limberg, G.
Borbolato, L.
Nogueira-Santos, J. V.
author_facet Barbosa, F. O.
Pérez-Villegas, A.
Rossi, S.
Santucci, R. M.
Aguilar, L.
Perottoni, H. D.
Limberg, G.
Borbolato, L.
Nogueira-Santos, J. V.
contents Modeling the Milky Way stellar halo requires well-determined density and velocity anisotropy profiles. However, it has been challenging to gather a large sample of stars with six-dimensional data that extend beyond 40 kpc to map the outer halo. Our work investigates the velocity anisotropy in the Milky Way stellar halo with more than 10,000 blue horizontal-branch stars, combining Gaia astrometric data and spectroscopic data from SEGUE, DESI and LAMOST. This large sample allows us to obtain a detailed profile of up to $\sim$70 kpc. Radial velocities are predominant in the inner halo ($< 30$ kpc), and the anisotropy presents a smooth decrease before rapidly dropping to negative values, becoming dominated by tangential dispersion velocities. Removing the main known accreted structures of the Milky Way, makes the anisotropy profile radially-dominated at all radii. Our profile clearly shows an increase in the anisotropy from the center of the Galaxy, in accordance to the simulations. We also investigate the correlation of anisotropy with metallicity and with color. The lack of correlation between metallicity and anisotropy in our clean sample reinforces that this relation is driven by merger events. The initial exploration with color indicates a relation between kinematics and age, showing that older stars are dynamically colder and present less radial orbits than younger stars in the inner halo.
format Preprint
id arxiv_https___arxiv_org_abs_2604_18278
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Characterizing the velocity anisotropy of the Milky Way's stellar halo
Barbosa, F. O.
Pérez-Villegas, A.
Rossi, S.
Santucci, R. M.
Aguilar, L.
Perottoni, H. D.
Limberg, G.
Borbolato, L.
Nogueira-Santos, J. V.
Astrophysics of Galaxies
Modeling the Milky Way stellar halo requires well-determined density and velocity anisotropy profiles. However, it has been challenging to gather a large sample of stars with six-dimensional data that extend beyond 40 kpc to map the outer halo. Our work investigates the velocity anisotropy in the Milky Way stellar halo with more than 10,000 blue horizontal-branch stars, combining Gaia astrometric data and spectroscopic data from SEGUE, DESI and LAMOST. This large sample allows us to obtain a detailed profile of up to $\sim$70 kpc. Radial velocities are predominant in the inner halo ($< 30$ kpc), and the anisotropy presents a smooth decrease before rapidly dropping to negative values, becoming dominated by tangential dispersion velocities. Removing the main known accreted structures of the Milky Way, makes the anisotropy profile radially-dominated at all radii. Our profile clearly shows an increase in the anisotropy from the center of the Galaxy, in accordance to the simulations. We also investigate the correlation of anisotropy with metallicity and with color. The lack of correlation between metallicity and anisotropy in our clean sample reinforces that this relation is driven by merger events. The initial exploration with color indicates a relation between kinematics and age, showing that older stars are dynamically colder and present less radial orbits than younger stars in the inner halo.
title Characterizing the velocity anisotropy of the Milky Way's stellar halo
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2604.18278