Chronology of our Galaxy from Gaia colour-magnitude diagram fitting (ChronoGal): IV. On the inner Milky Way stellar age distribution

Fuente: arXiv
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Main Authors: Ruiz-Lara, Tomás, Mirabal, David, Gallart, Carme, Grand, Robert, Fragkoudi, Francesca, Pérez, Isabel, Cassisi, Santi, Fernández-Alvar, Emma, Queiroz, Anna B., Aznar-Menargues, Guillem, González-Koda, Yllari K., Rivero, Alicia, Surot, Francisco, Thomas, Guillaume F., Bieri, Rebekka, Gomez, Facundo A., Pakmor, Rüdiger, van de Voort, Freeke
Format: Preprint
Published: 2025
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author Ruiz-Lara, Tomás
Mirabal, David
Gallart, Carme
Grand, Robert
Fragkoudi, Francesca
Pérez, Isabel
Cassisi, Santi
Fernández-Alvar, Emma
Queiroz, Anna B.
Aznar-Menargues, Guillem
González-Koda, Yllari K.
Rivero, Alicia
Surot, Francisco
Thomas, Guillaume F.
Bieri, Rebekka
Gomez, Facundo A.
Pakmor, Rüdiger
van de Voort, Freeke
author_facet Ruiz-Lara, Tomás
Mirabal, David
Gallart, Carme
Grand, Robert
Fragkoudi, Francesca
Pérez, Isabel
Cassisi, Santi
Fernández-Alvar, Emma
Queiroz, Anna B.
Aznar-Menargues, Guillem
González-Koda, Yllari K.
Rivero, Alicia
Surot, Francisco
Thomas, Guillaume F.
Bieri, Rebekka
Gomez, Facundo A.
Pakmor, Rüdiger
van de Voort, Freeke
contents The Milky Way's inner region is dominated by a stellar bar and a boxy-peanut shaped bulge. However, which stellar populations inhabit the inner Galaxy or how star formation proceeded there is still unknown. The difficulty in studying these stars stems from their location in dense regions that are strongly impacted by extinction and crowding effects. In this work, we use star formation histories computed in the solar neighbourhood using Gaia Colour-Magnitude Diagram fitting to shed light onto the evolution of the central regions of our Galaxy. For that, we have obtained precise age distributions for the non-negligible amount of super metal-rich stars ([M/H] $\sim$ 0.5) in the solar neighbourhood (more than 5$\%$ of the total stars within 400 pc of the plane). Assuming that these stars were born in the inner Galaxy and migrated outwards, those distributions should be indicative of the true stellar age distribution in the inner Galaxy. Surprisingly, we find that these age distributions are not continuous but show clear signs of episodic star formation ($\sim$~13.5, 10.0, 7.0, 4.0, 2.0 and less than 1~Gyr ago). Interestingly, with the exception of the 4~Gyr event, the timings of the detected events coincide with the formation of the primitive Milky Way and with known merging events or satellite encounters (Gaia-Enceladus-Sausage, Sagittarius dwarf galaxy, and the Magellanic Clouds), suggesting that these could have induced enhanced and global star-forming episodes. These results are compatible with a scenario in which Gaia-Enceladus-Sausage is responsible for the formation of the bar 10 Gyr ago. However, we cannot associate any accretion counterpart with the 4-Gyr-ago event, leaving room for a late formation of the bar, as previously proposed. A qualitative comparison with the Auriga Superstars simulations suggesting a possible link to bar dynamics and satellite accretion. [Abridged]
format Preprint
id arxiv_https___arxiv_org_abs_2510_02238
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Chronology of our Galaxy from Gaia colour-magnitude diagram fitting (ChronoGal): IV. On the inner Milky Way stellar age distribution
Ruiz-Lara, Tomás
Mirabal, David
Gallart, Carme
Grand, Robert
Fragkoudi, Francesca
Pérez, Isabel
Cassisi, Santi
Fernández-Alvar, Emma
Queiroz, Anna B.
Aznar-Menargues, Guillem
González-Koda, Yllari K.
Rivero, Alicia
Surot, Francisco
Thomas, Guillaume F.
Bieri, Rebekka
Gomez, Facundo A.
Pakmor, Rüdiger
van de Voort, Freeke
Astrophysics of Galaxies
The Milky Way's inner region is dominated by a stellar bar and a boxy-peanut shaped bulge. However, which stellar populations inhabit the inner Galaxy or how star formation proceeded there is still unknown. The difficulty in studying these stars stems from their location in dense regions that are strongly impacted by extinction and crowding effects. In this work, we use star formation histories computed in the solar neighbourhood using Gaia Colour-Magnitude Diagram fitting to shed light onto the evolution of the central regions of our Galaxy. For that, we have obtained precise age distributions for the non-negligible amount of super metal-rich stars ([M/H] $\sim$ 0.5) in the solar neighbourhood (more than 5$\%$ of the total stars within 400 pc of the plane). Assuming that these stars were born in the inner Galaxy and migrated outwards, those distributions should be indicative of the true stellar age distribution in the inner Galaxy. Surprisingly, we find that these age distributions are not continuous but show clear signs of episodic star formation ($\sim$~13.5, 10.0, 7.0, 4.0, 2.0 and less than 1~Gyr ago). Interestingly, with the exception of the 4~Gyr event, the timings of the detected events coincide with the formation of the primitive Milky Way and with known merging events or satellite encounters (Gaia-Enceladus-Sausage, Sagittarius dwarf galaxy, and the Magellanic Clouds), suggesting that these could have induced enhanced and global star-forming episodes. These results are compatible with a scenario in which Gaia-Enceladus-Sausage is responsible for the formation of the bar 10 Gyr ago. However, we cannot associate any accretion counterpart with the 4-Gyr-ago event, leaving room for a late formation of the bar, as previously proposed. A qualitative comparison with the Auriga Superstars simulations suggesting a possible link to bar dynamics and satellite accretion. [Abridged]
title Chronology of our Galaxy from Gaia colour-magnitude diagram fitting (ChronoGal): IV. On the inner Milky Way stellar age distribution
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2510.02238