English

Eccentric black hole mergers via three-body interactions in young, globular, and nuclear star clusters

High Energy Astrophysical Phenomena 2024-03-20 v2 Solar and Stellar Astrophysics General Relativity and Quantum Cosmology

Abstract

Eccentric mergers are a signature of the dynamical formation channel of binary black holes (BBHs) in dense stellar environments and hierarchical triple systems. Here, we investigate the formation of eccentric mergers via binary-single interactions by means of 2.5×1052.5\times10^{5} direct N\textit{N}-body simulations. Our simulations include post-Newtonian terms up to the 2.5th order and model the typical environment of young (YSCs), globular (GCs), and nuclear star clusters (NSCs). Around 0.6%0.6\% (1%1\%) of our mergers in NSCs (GCs) have an eccentricity >0.1{>0.1} when the emitted gravitational wave frequency is 10 Hz in the source frame, while in YSCs this fraction rises to 1.6%1.6\%. Approximately 63%\sim63\% of these mergers are produced by chaotic, resonant interactions where temporary binaries are continuously formed and destroyed, while 31%\sim31\% arise from an almost direct collision of two black holes (BHs). Lastly, 6%\sim 6\% of these eccentric mergers occur in temporary hierarchical triples. We find that binaries undergoing a flyby generally develop smaller tilt angles with respect to exchanges. This result challenges the idea that perfectly isotropic spin orientations are produced by dynamics. The environment dramatically affects BH retention: 0%0\%, 3.1%3.1\%, and 19.9%19.9\% of all the remnant BHs remain in YSCs, GCs, and NSCs, respectively. The fraction of massive BHs also depends on the host cluster properties, with pair-instability (6060\leq\,MBH_{\rm BH}/M_{\odot}\leq100) and intermediate-mass (MBH_{\rm BH}\geq100\,M_{\odot}) BHs accounting for approximately 44%\sim44\% and 1.6%1.6\% of the mergers in YSCs, 33%\sim33\% and 0.7%0.7\% in GCs, and 28%\sim28\% and 0.4%0.4\% in NSCs, respectively.

Keywords

Cite

@article{arxiv.2303.07421,
  title  = {Eccentric black hole mergers via three-body interactions in young, globular, and nuclear star clusters},
  author = {Marco Dall'Amico and Michela Mapelli and Stefano Torniamenti and Manuel Arca Sedda},
  journal= {arXiv preprint arXiv:2303.07421},
  year   = {2024}
}

Comments

Astronomy & Astrophysics, Volume 683, Number A186