A Mass-Magnitude Relation for Low-mass Stars Based on Dynamical Measurements of Thousands of Binary Star Systems
arXiv:2208.12112 · doi:10.3847/1538-3881/ac8cf7
Abstract
Stellar mass is a fundamental parameter that is key to our understanding of stellar formation and evolution, as well as the characterization of nearby exoplanet companions. Historically, stellar masses have been derived from long-term observations of visual or spectroscopic binary star systems. While advances in high-resolution imaging have enabled observations of systems with shorter orbital periods, stellar mass measurements remain challenging, and relatively few have been precisely measured. We present a new statistical approach to measuring masses for populations of stars. Using Gaia astrometry, we analyze the relative orbital motion of wide binary systems comprising low-mass stars to establish a Mass-Magnitude relation in the Gaia band spanning the absolute magnitude range , corresponding to a mass range of ~M~M. This relation is directly applicable to million stars in the Gaia catalog. Based on comparison to existing Mass-Magnitude relations calibrated for 2MASS magnitudes, we estimate that the internal precision of our mass estimates is 10. We use this relation to estimate masses for a volume-limited sample of 18,200 stars within 50~pc of the Sun and the present-day field mass function for stars with ~M, which we find peaks at 0.16~M. We investigate a volume-limited sample of wide binary systems with early K dwarf primaries, complete for binary mass ratios , and measure the distribution of at separations ~au. We find that our distribution of is not uniformly distributed, rather decreasing towards .
13 pages, 8 figures
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