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◆ Monthly Notices of the Royal Astronomical Society2026-03-03· Physics

Spin-orbit misalignments of eccentric black hole mergers in AGN discs

Gaia Fabj, Christopher Tiede, Connar Rowan, Martin Pessah, Johan Samsing

原始摘要(英文原文)· Original abstract
ABSTRACT The discs of Active Galactic Nuclei (AGNs) provide a natural environment where stellar mass-black holes can dynamically pair, undergo repeated interactions, and eventually merge. It is commonly assumed that gas accretion will both efficiently spin-up disc-embedded black holes and align the orbits of embedded binaries with the disc plane, leading to mergers with preferentially positive effective spin parameters ($\chi _{\rm eff}$). Such predictions have motivated the use of $\chi _{\rm eff}$ as a diagnostic for identifying candidate AGN-embedded mergers in the LIGO-Virgo-KAGRA gravitational wave catalogue. In this work, we perform post-Newtonian N-body simulations of nearly planar binary-single encounters and apply an empirically motivated gas-driven alignment prescription to characterize the expected $\chi _{\rm eff}-$eccentricity correlations of AGN-embedded mergers. By comparing the alignment and gravitational wave inspiral time-scales, we identify the regions of parameter space, across both disc location and binary properties, where full disc-spin-orbit alignment is effective and where it is not. We find that quasi-circular binaries typically align by the time they merge, supporting the standard picture of spin-orbit aligned orientations. By contrast, eccentric binaries (with in-band eccentricity $e_{\rm 10Hz}\gtrsim 0.1$) typically inspiral too quickly for gas torques to act, preserving the post-encounter spin-orbit misalignments and yielding more isotropic $\chi _{\rm eff}$ distributions when disc densities and torque efficiencies are modest. This interplay naturally establishes a correlation between binary eccentricity and $\chi _{\rm eff}$ in AGN discs, highlighting a new key observable of the AGN channel and a potential explanation for massive events such as GW190521 and GW231123.
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