Evaporation Ages: a New Dating Method for Young Star Clusters
Abstract
The ages of young star clusters are fundamental clocks to constrain the formation and evolution of pre-main-sequence stars and their protoplanetary disks and exoplanets. However, dating methods for very young clusters often disagree, casting doubts on the accuracy of the derived ages. We propose a new method to derive the kinematic age of star clusters based on the evaporation ages of their stars. The method is validated and calibrated using hundreds of clusters identified in a supernova-driven simulation of the interstellar medium forming stars for approximately 40 Myr within a 250 pc region. We demonstrate that the clusters' evaporation-age uncertainty can be as small as about 10% for clusters with a large enough number of evaporated stars and small but realistic observational errors. We have obtained evaporation ages for a pilot sample of 10 clusters, finding a good agreement with their published isochronal ages. The evaporation ages will provide important constraints for modeling the pre-main-sequence evolution of low-mass stars, as well as to investigate the star-formation and gas-evaporation history of young clusters. These ages can be more accurate than isochronal ages for very young clusters, for which observations and models are more uncertain.
Cite
@article{arxiv.2311.08363,
title = {Evaporation Ages: a New Dating Method for Young Star Clusters},
author = {V. -M. Pelkonen and N. Miret-Roig and P. Padoan},
journal= {arXiv preprint arXiv:2311.08363},
year = {2024}
}
Comments
13 pages, 11 figures, 2 tables, Submitted to A&A on Nov 14th 2023, Accepted 9 January 2024