C3PO: Towards a complete census of co-moving pairs of stars. I. High precision stellar parameters for 250 stars
David Yong, Fan Liu, Yuan-Sen Ting, Meridith Joyce, Bertram Bitsch,, Fei Dai, Aaron Dotter, Amanda I. Karakas, Michael T. Murphy

TL;DR
This study provides high-precision stellar parameters for 125 co-moving star pairs, classifies their chemical homogeneity, and identifies key factors influencing their chemical differences, aiding calibration of stellar abundance measurements.
Contribution
It offers the first detailed analysis of chemical homogeneity in co-moving pairs, establishing separation thresholds and examining the effects of temperature and planet ingestion on chemical differences.
Findings
Spatial separation of 10^6 AU marks boundary for chemical homogeneity.
No correlation between velocity separation and chemical homogeneity.
Increased chemical inhomogeneity with higher effective temperature.
Abstract
We conduct a line-by-line differential analysis of a sample of 125 co-moving pairs of stars (dwarfs and subgiants near solar metallicity). We obtain high precision stellar parameters with average uncertainties in effective temperature, surface gravity and metallicity of 16.5 K, 0.033 dex and 0.014 dex, respectively. We classify the co-moving pairs of stars into two groups, chemically homogeneous (conatal; |Delta[Fe/H]| 0.04 dex) and inhomogeneous (non-conatal), and examine the fraction of chemically homogeneous pairs as a function of separation and effective temperature. The four main conclusions from this study are: (1) A spatial separation of \ds = 10 AU is an approximate boundary between homogeneous and inhomogeneous pairs of stars, and we restrict our conclusions to only consider the 91 pairs with \ds 10 AU; (2) There is no trend between velocity separation and…
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Taxonomy
TopicsStellar, planetary, and galactic studies · Astronomy and Astrophysical Research · Astronomical Observations and Instrumentation
