TY - JOUR
T1 - A Long Period Stellar-Mass Black Hole Binary in $ω$ Centauri
AU - Whitaker, Matthew
AU - Kerr, Evan
AU - Seth, Anil
AU - Häberle, Maximilian
AU - Strader, Jay
AU - Anderson, Jay
AU - Bellini, Andrea
AU - Clontz, Callie
AU - Freeman, Zack
AU - Griggio, Massimo
AU - Kamann, Sebastian
AU - Libralato, Mattia
AU - Neumayer, Nadine
AU - González Prieto, Elena
AU - Rodriguez, Carl L.
AU - Saracino, Sara
AU - Smith, Peter
AU - van de Ven, Glenn
AU - Wang, Zixian
PY - 2026/6/1
Y1 - 2026/6/1
N2 - Modern simulations of stellar dynamics in globular clusters peg a dominant role for stellar-mass black holes, but direct evidence for black holes in clusters remains limited. We present the discovery of an astrometric stellar-mass black hole--main sequence star binary in $ω$ Centauri, the most massive Galactic globular cluster, using Hubble Space Telescope data from the oMEGACat project and additional JWST data that span a total of 23 years. The luminous companion to the black hole is a main-sequence turnoff star, and has a period of $94^{+63}_{-42}$ years, a semi-major axis of $31^{+15}_{-12}$ AU, and an eccentricity of $e=0.72^{+0.08}_{-0.13}$. Since we observe the binary during periastron, the mass of the black hole is well-constrained even though we only observe a partial orbit: the inferred black hole mass is $4.46^{+1.22}_{-1.01}$ M$_\odot$. We call this black hole oMEGACat BH-2. This is the first astrometric discovery of a stellar-mass black hole in a globular cluster, and is the longest period black hole binary system yet discovered. The low mass of this black hole is perhaps surprising given the low metallicity of the cluster, and shows that at least some low-mass black holes form at metallicity $Z
AB - Modern simulations of stellar dynamics in globular clusters peg a dominant role for stellar-mass black holes, but direct evidence for black holes in clusters remains limited. We present the discovery of an astrometric stellar-mass black hole--main sequence star binary in $ω$ Centauri, the most massive Galactic globular cluster, using Hubble Space Telescope data from the oMEGACat project and additional JWST data that span a total of 23 years. The luminous companion to the black hole is a main-sequence turnoff star, and has a period of $94^{+63}_{-42}$ years, a semi-major axis of $31^{+15}_{-12}$ AU, and an eccentricity of $e=0.72^{+0.08}_{-0.13}$. Since we observe the binary during periastron, the mass of the black hole is well-constrained even though we only observe a partial orbit: the inferred black hole mass is $4.46^{+1.22}_{-1.01}$ M$_\odot$. We call this black hole oMEGACat BH-2. This is the first astrometric discovery of a stellar-mass black hole in a globular cluster, and is the longest period black hole binary system yet discovered. The low mass of this black hole is perhaps surprising given the low metallicity of the cluster, and shows that at least some low-mass black holes form at metallicity $Z
KW - Astrophysics of Galaxies
KW - Solar and Stellar Astrophysics
M3 - Article
SN - 2041-8205
JO - The Astrophysical journal Letters
JF - The Astrophysical journal Letters
ER -