Unveiling the formation channels of stellar halos through their chemical fingerprints

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Hauptverfasser: Gonzalez-Jara, Jenny, Tissera, Patricia B., Monachesi, Antonela, Sillero, Emanuel, Pallero, Diego, Pedrosa, Susana, Tau, Elisa A., Tapia-Contreras, Brian, Bignone, Lucas
Format: Preprint
Veröffentlicht: 2024
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author Gonzalez-Jara, Jenny
Tissera, Patricia B.
Monachesi, Antonela
Sillero, Emanuel
Pallero, Diego
Pedrosa, Susana
Tau, Elisa A.
Tapia-Contreras, Brian
Bignone, Lucas
author_facet Gonzalez-Jara, Jenny
Tissera, Patricia B.
Monachesi, Antonela
Sillero, Emanuel
Pallero, Diego
Pedrosa, Susana
Tau, Elisa A.
Tapia-Contreras, Brian
Bignone, Lucas
contents Stellar halos around galaxies contain key information about their formation and assembly history. Using simulations, we can trace the origins of different stellar populations in these halos, contributing to our understanding of galaxy evolution. We aim to investigate the assembly of stellar halos and their chemical abundances in 28 galaxies from CIELO project with logMgal[9 and 11]Msun. Stellar halos were identified using the AM E method, focusing on the outer regions between the 1.5 optical radius and the virial radius. We divided the stellar populations based on their formation channel: exsitu, endodebris, and insitu, and analyzed their chemical abundances, ages, and spatial distributions. Additionally, we explored correlations between halo mass, metallicity, and alpha element enrichment. CIELO simulations reveal that stellar halos are predominantly composed of accreted material (exsitu and endodebris stars), in agreement with previous works. The mass fraction of these populations is independent of stellar halo mass, though their metallicities scale linearly with it. Exsitu stars tend to dominate the outskirts and be more alpha rich and older, while endodebris stars are more prevalent at lower radii and tend to be less alpha rich and slightly younger. Massive stellar halos require a median of five additional satellites to build 90 percent of their mass, compared to lower mass halos, which typically need fewer (median of 2.5) and lower-mass satellites and are assembled earlier. The diversity of accreted satellite histories results in well defined stellar halo mass metallicity and [alpha/Fe] [Fe/H] relations, offering a detailed view of the chemical evolution and assembly history of stellar halos. We find that the [alpha/Fe] [Fe/H] is more sensitive to the characteristics and star formation history of the contributing satellites than the stellar halo mass metallicity relationship
format Preprint
id arxiv_https___arxiv_org_abs_2412_13483
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Unveiling the formation channels of stellar halos through their chemical fingerprints
Gonzalez-Jara, Jenny
Tissera, Patricia B.
Monachesi, Antonela
Sillero, Emanuel
Pallero, Diego
Pedrosa, Susana
Tau, Elisa A.
Tapia-Contreras, Brian
Bignone, Lucas
Astrophysics of Galaxies
Stellar halos around galaxies contain key information about their formation and assembly history. Using simulations, we can trace the origins of different stellar populations in these halos, contributing to our understanding of galaxy evolution. We aim to investigate the assembly of stellar halos and their chemical abundances in 28 galaxies from CIELO project with logMgal[9 and 11]Msun. Stellar halos were identified using the AM E method, focusing on the outer regions between the 1.5 optical radius and the virial radius. We divided the stellar populations based on their formation channel: exsitu, endodebris, and insitu, and analyzed their chemical abundances, ages, and spatial distributions. Additionally, we explored correlations between halo mass, metallicity, and alpha element enrichment. CIELO simulations reveal that stellar halos are predominantly composed of accreted material (exsitu and endodebris stars), in agreement with previous works. The mass fraction of these populations is independent of stellar halo mass, though their metallicities scale linearly with it. Exsitu stars tend to dominate the outskirts and be more alpha rich and older, while endodebris stars are more prevalent at lower radii and tend to be less alpha rich and slightly younger. Massive stellar halos require a median of five additional satellites to build 90 percent of their mass, compared to lower mass halos, which typically need fewer (median of 2.5) and lower-mass satellites and are assembled earlier. The diversity of accreted satellite histories results in well defined stellar halo mass metallicity and [alpha/Fe] [Fe/H] relations, offering a detailed view of the chemical evolution and assembly history of stellar halos. We find that the [alpha/Fe] [Fe/H] is more sensitive to the characteristics and star formation history of the contributing satellites than the stellar halo mass metallicity relationship
title Unveiling the formation channels of stellar halos through their chemical fingerprints
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2412.13483