True Unicorns and False Positives: Simulated Probabilities of Dark Massive Companions to Bright Stars
arXiv:2409.05190 · doi:10.1093/mnras/stae2146
Abstract
Many compact objects (black holes and neutron stars) exist in binaries. These binaries are normally discovered through their interactions, either from accretion as an X-ray binary or collisions as a gravitational wave source. However, the majority of compact objects in binaries should be non-interacting. Recently proposed discoveries have used radial velocities of a bright star (main sequence or evolved) that are indicative of a massive but dark companion, which is inferred to be a compact object. Unfortunately, this burgeoning new field has been hindered by false positives, including the ``Unicorn'' (V723 Mon) which was initially believed to be a red giant/black hole binary before being refuted. In this work, we investigate the evolution of stellar binary populations over time, using the binary evolution code COSMIC to simulate binary populations and determine the probability of a candidate object being either a ``true Unicorn'' (actual compact objects in binaries) or a false positive. We find that main sequence stars have a higher true Unicorn probability than red giants or naked helium stars (an exposed core of an evolved star), particularly if the companion is more massive and is >3 times less luminous than the MS star. We also find that a top-heavy initial mass function raises the true Unicorn probability further, that super-solar metallicity reduces the probability, and that most true Unicorns are found at periods <100 days. Finally, we find that a significant fraction of true Unicorns do not evolve into x-ray binaries during the age of the universe.
16 pages, 6 figures, submitted to MNRAS
References in corpus (17)
- The NumPy array: a structure for efficient numerical computation
- Mergers and Obliquities in Stellar Triples
- The most massive stars in the Arches cluster
- A wide star-black-hole binary system from radial-velocity measurements
- A red giant orbiting a black hole
- The Physics of Star Cluster Formation and Evolution
- A highly magnetised and rapidly rotating white dwarf as small as the Moon
- The Arches Cluster Mass Function
- Hunting Black Holes with Gaia
- Unicorns and Giraffes in the binary zoo: stripped giants with subgiant companions
- A stripped helium star in the potential black hole binary LB-1
- The Gaia Project - technique, performance and status
- A neutron star candidate in a 2-year orbit
- Radio observations of massive stars in the Galactic centre: The Arches Cluster
- Low-Mass Neutron Stars with Rotation
- X-ray Binaries in External Galaxies
- XTE J1906+090: a persistent low luminosity Be X-ray Binary