2026/05/12 by A. Vincent Paul, Parthapratim Mahapatra, M. Favata +2
Physics and Astronomy · #Astrophysical Phenomena and Observations #Gamma-ray bursts and supernovae #Pulsars and Gravitational Waves Research #astro-ph.HE #gr-qc
paper · pdf · doi:10.3847/1538-4357/ae8759
published as The Astrophysical Journal (2026) , volume 1006, 191 · 10 pages, 5 figures, and 1 table
arxiv created 2026/05/12 · openalex publication_date 2026/07/27 · openalex created_date 2026/07/28 · arxiv updated 2026/07/30 · openalex updated_date 2026/08/01
Abstract Dynamical capture in dense stellar environments is a promising channel for producing eccentric compact binary mergers. Although there have been no confident detections of eccentric mergers to date, a few candidates show indications of nonnegligible in-band eccentricity upon reanalysis of the data. By assuming an observed eccentric event originates from a dynamical gravitational-wave (GW) capture, we show that it is possible to identify the host environment using the eccentricity and mass posteriors. In particular, the eccentricity posterior can be mapped to posteriors on key capture parameters, such as the relative velocity at infinity and the impact parameter. By comparing these with the expected velocity distributions of different astrophysical environments, we can place constraints on the likely host. Assuming that it originated from a GW capture, we applied this framework to the neutron star–black hole merger GW200105. By comparing with the velocity dispersion distributions of neutron stars in the cores of globular clusters (GCs) and nuclear star clusters (NSCs), we find the probability that GW200105 merged in a GC (NSC) to be ∼29% (71%). As we anticipate detecting several eccentric mergers in the future, this method can provide a valuable astrophysical diagnostic of their host environments on a single-event basis; this can be straightforwardly generalized to a population of eccentric binaries. The formalism we develop is also applied to GW190521, but is less constraining for that event. Lastly, we infer a GW decay time from capture to merger of 11–156 days for GW200105.