Isochrone-cloud fitting of the extended Main-Sequence Turn-Off of young clusters
C. Johnston, C. Aerts, M. G. Pedersen, N. Bastian

TL;DR
This study uses isochrone-cloud fitting based on interior mixing profiles calibrated from asteroseismology to interpret extended main-sequence turn-offs in young clusters, highlighting the role of stellar interior processes in cluster age estimation.
Contribution
It introduces a method to incorporate interior mixing profiles into isochrone-clouds for better interpretation of eMSTOs in young clusters, linking stellar interior physics to observed cluster properties.
Findings
Interior mixing profiles lead to higher core masses in eMSTO stars.
Models can explain eMSTOs with a single age, considering uncertainties.
No clear correlation between rotation/pulsation and core mass in NGC 884.
Abstract
Extended main-sequence turn-offs (eMSTO) are a commonly observed property of young clusters. A global theoretical interpretation for the eMSTOs is still lacking, but stellar rotation is considered a necessary ingredient to explain the eMSTO. We aim to assess the importance of core-boundary and envelope mixing in stellar interiors for the interpretation of eMSTOs in terms of one coeval population. We construct isochrone-clouds based on interior mixing profiles of stars with a convective core calibrated from asteroseismology of isolated galactic field stars. We fit these isochrone-clouds to the measured eMSTO to estimate the age and core mass of the stars in the two young clusters NGC 1850 and NGC 884, assuming one coeval population and fixing the metallicity to the one measured from spectroscopy. We assess the correlations between the interior mixing properties of the cluster members and…
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