The Pristine Inner Galaxy Survey (PIGS) XI: Revealing the chemical evolution of the interacting Sagittarius dwarf galaxy

Fuente: arXiv
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Autori principali: Vitali, Sara, Rojas-Arriagada, Alvaro, Jofré, Paula, Sestito, Federico, Povick, Joshua, Hill, Vanessa, Fernández-Alvar, Emma, Ardern-Arentsen, Anke, Jablonka, Pascale, Martin, Nicolas F., Starkenburg, Else, Aguado, David
Natura: Preprint
Pubblicazione: 2024
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author Vitali, Sara
Rojas-Arriagada, Alvaro
Jofré, Paula
Sestito, Federico
Povick, Joshua
Hill, Vanessa
Fernández-Alvar, Emma
Ardern-Arentsen, Anke
Jablonka, Pascale
Martin, Nicolas F.
Starkenburg, Else
Aguado, David
author_facet Vitali, Sara
Rojas-Arriagada, Alvaro
Jofré, Paula
Sestito, Federico
Povick, Joshua
Hill, Vanessa
Fernández-Alvar, Emma
Ardern-Arentsen, Anke
Jablonka, Pascale
Martin, Nicolas F.
Starkenburg, Else
Aguado, David
contents The Sagittarius dwarf spheroidal galaxy (Sgr dSph) is a satellite orbiting the Milky Way that has experienced multiple stripping events due to tidal interactions with our Galaxy. Its accretion history led to a distinct stellar overdensity, the remnant of the core of the progenitor. We present a complete chemical analysis of 111 giant stars in the core of Sgr to investigate the chemical evolution and enrichment history of this satellite. Employing the metallicity-sensitive Ca H&K photometry from the Pristine Inner Galaxy Survey, we selected stars that span a wide metallicity range and obtained high-resolution spectra with the ESO FLAMES/GIRAFFE multiobject spectrograph. For the stellar sample covering $-2.13 < \rm{[Fe/H] < -0.35}$, we derived abundances for up to 14 chemical elements with average uncertainties of $\sim 0.09$ dex and a set of stellar ages that allowed us to build an age-metallicity relation (AMR) for the entire sample. With the most comprehensive set of chemical species measured for the core of Sgr (Na, Mg, Al, Si, Ca, Sc, Ti, V, Cr, Co, Ba, La, and Eu), we studied several [X/Fe] ratios. Most trends align with Galactic chemical trends, but notable differences emerge in the heavy $n$-capture elements, which offer independent insights into the star formation history of a stellar population. The deficiency in $α$ elements relative to the Milky Way suggests a slower, less efficient early star formation history, similar to other massive satellites. $S$-process element patterns indicate significant enrichment from asymptotic giant branch stars over time. The AMR and chemical ratios point to an extended star formation history, with a rapid early phase in the first Gyr, followed by declining activity and later star-forming episodes. These findings are consistent with Sgr hosting multiple stellar populations, from young ($\sim 4$ Gyr) to old, metal-poor stars ($\sim 10$ Gyr).
format Preprint
id arxiv_https___arxiv_org_abs_2412_06896
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The Pristine Inner Galaxy Survey (PIGS) XI: Revealing the chemical evolution of the interacting Sagittarius dwarf galaxy
Vitali, Sara
Rojas-Arriagada, Alvaro
Jofré, Paula
Sestito, Federico
Povick, Joshua
Hill, Vanessa
Fernández-Alvar, Emma
Ardern-Arentsen, Anke
Jablonka, Pascale
Martin, Nicolas F.
Starkenburg, Else
Aguado, David
Astrophysics of Galaxies
The Sagittarius dwarf spheroidal galaxy (Sgr dSph) is a satellite orbiting the Milky Way that has experienced multiple stripping events due to tidal interactions with our Galaxy. Its accretion history led to a distinct stellar overdensity, the remnant of the core of the progenitor. We present a complete chemical analysis of 111 giant stars in the core of Sgr to investigate the chemical evolution and enrichment history of this satellite. Employing the metallicity-sensitive Ca H&K photometry from the Pristine Inner Galaxy Survey, we selected stars that span a wide metallicity range and obtained high-resolution spectra with the ESO FLAMES/GIRAFFE multiobject spectrograph. For the stellar sample covering $-2.13 < \rm{[Fe/H] < -0.35}$, we derived abundances for up to 14 chemical elements with average uncertainties of $\sim 0.09$ dex and a set of stellar ages that allowed us to build an age-metallicity relation (AMR) for the entire sample. With the most comprehensive set of chemical species measured for the core of Sgr (Na, Mg, Al, Si, Ca, Sc, Ti, V, Cr, Co, Ba, La, and Eu), we studied several [X/Fe] ratios. Most trends align with Galactic chemical trends, but notable differences emerge in the heavy $n$-capture elements, which offer independent insights into the star formation history of a stellar population. The deficiency in $α$ elements relative to the Milky Way suggests a slower, less efficient early star formation history, similar to other massive satellites. $S$-process element patterns indicate significant enrichment from asymptotic giant branch stars over time. The AMR and chemical ratios point to an extended star formation history, with a rapid early phase in the first Gyr, followed by declining activity and later star-forming episodes. These findings are consistent with Sgr hosting multiple stellar populations, from young ($\sim 4$ Gyr) to old, metal-poor stars ($\sim 10$ Gyr).
title The Pristine Inner Galaxy Survey (PIGS) XI: Revealing the chemical evolution of the interacting Sagittarius dwarf galaxy
topic Astrophysics of Galaxies
url https://arxiv.org/abs/2412.06896