Constraining Extra Mixing during the Main Sequence: What Depletes Lithium Does Not Touch Beryllium

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Main Authors: Reggiani, Henrique, Galarza, Jhon Yana, Lorenzo-Oliveira, Diego, Covarrubias, Sofia, Oyague, Micaela, Valle, Rita, Chanamé, Julio
Format: Preprint
Published: 2024
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author Reggiani, Henrique
Galarza, Jhon Yana
Lorenzo-Oliveira, Diego
Covarrubias, Sofia
Oyague, Micaela
Valle, Rita
Chanamé, Julio
author_facet Reggiani, Henrique
Galarza, Jhon Yana
Lorenzo-Oliveira, Diego
Covarrubias, Sofia
Oyague, Micaela
Valle, Rita
Chanamé, Julio
contents Measurements of lithium abundances in solar-type stars have shown that standard models of stellar evolution are incapable of explaining the observed depletion as a function of stellar age. Beryllium is one of the lightest elements that can be measured in stellar photospheres, and it can be burned in relatively low temperatures. Studying its abundances as a function of stellar age can provide important constraints to stellar mixing models, as the level of depletion as a function of time will indicate how deep the photospheric material must be dredged to explain the observed abundances. In an effort to provide the most stringent constraints for non-standard stellar mixing models, we observed a sample of solar-twins and concomitantly analyzed their lithium and beryllium abundances. Unlike what is typically observed for lithium, we found that beryllium does not decrease as a function of stellar age along the main-sequence, constraining models that predict burning of both materials. Based on our data, models that invoke convective overshoot and convective settling are preferred over typical rotationaly-induced mixing models, as the later burn Be in excess while the former do not. Previous works also proposed mixing due to gravity waves as a possible explanation for observed abundances, which can fit our data as well. Furthermore, based on our solar twins, Be depletion likely happens within the first $\sim1$ Gyr. We also confirm previous findings of an increase in Be abundance as a function of metallicity, indicative of galactic production via cosmic ray spallation.
format Preprint
id arxiv_https___arxiv_org_abs_2408_10999
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Constraining Extra Mixing during the Main Sequence: What Depletes Lithium Does Not Touch Beryllium
Reggiani, Henrique
Galarza, Jhon Yana
Lorenzo-Oliveira, Diego
Covarrubias, Sofia
Oyague, Micaela
Valle, Rita
Chanamé, Julio
Solar and Stellar Astrophysics
Measurements of lithium abundances in solar-type stars have shown that standard models of stellar evolution are incapable of explaining the observed depletion as a function of stellar age. Beryllium is one of the lightest elements that can be measured in stellar photospheres, and it can be burned in relatively low temperatures. Studying its abundances as a function of stellar age can provide important constraints to stellar mixing models, as the level of depletion as a function of time will indicate how deep the photospheric material must be dredged to explain the observed abundances. In an effort to provide the most stringent constraints for non-standard stellar mixing models, we observed a sample of solar-twins and concomitantly analyzed their lithium and beryllium abundances. Unlike what is typically observed for lithium, we found that beryllium does not decrease as a function of stellar age along the main-sequence, constraining models that predict burning of both materials. Based on our data, models that invoke convective overshoot and convective settling are preferred over typical rotationaly-induced mixing models, as the later burn Be in excess while the former do not. Previous works also proposed mixing due to gravity waves as a possible explanation for observed abundances, which can fit our data as well. Furthermore, based on our solar twins, Be depletion likely happens within the first $\sim1$ Gyr. We also confirm previous findings of an increase in Be abundance as a function of metallicity, indicative of galactic production via cosmic ray spallation.
title Constraining Extra Mixing during the Main Sequence: What Depletes Lithium Does Not Touch Beryllium
topic Solar and Stellar Astrophysics
url https://arxiv.org/abs/2408.10999