English

Accretion Disk Perturbations and Their Effects on Kerr Black Hole Superradiance and Gravitational Atom Evolution

General Relativity and Quantum Cosmology 2026-03-06 v1

Abstract

Kerr black hole (BH) superradiance can form gravitational atoms and produce characteristic gravitational-wave signals, providing a probe of ultralight bosons and dark matter. In realistic systems, accretion-disk gravity can shift energy levels and mix states, modifying the effective superradiant growth. We model the disk as a weak external perturbation via a multipole expansion and derive an effective three-level Hamiltonian for the n=2n=2 subspace {211,210,211}\{\ket{211},\ket{210},\ket{21-1}\} in the weak-coupling regime. The leading disk effect is the quadrupolar (d=2\ell_d=2) tidal field, whose symmetries fix the selection rules: axisymmetry gives only diagonal shifts, equatorial nonaxisymmetry activates Δm=±2\Delta m=\pm2 mixing (211211\ket{211}\leftrightarrow\ket{21-1}), and breaking equatorial reflection opens Δm=±1\Delta m=\pm1 couplings involving 210\ket{210}. As illustrations, a transient equatorial m=2m=2 spiral wave drives the resulting two-level system and can suppress or quench superradiance by populating a decaying mode, while a quasi-static warp produces full three-level mixing and can generate narrow ``growth gaps'' near accidental near-degeneracies, with the same static reshuffling also allowing enhancement when weight shifts toward the growing mode. These findings demonstrate that accretion disk perturbations are a crucial environmental factor in determining the dynamics of BH superradiance and the evolution of boson clouds, thereby providing a more reliable theoretical basis for assessing the detectability of ultralight bosons in realistic astrophysical settings.

Keywords

Cite

@article{arxiv.2603.05182,
  title  = {Accretion Disk Perturbations and Their Effects on Kerr Black Hole Superradiance and Gravitational Atom Evolution},
  author = {Ruiheng Li and Zhong-hao Luo and Zehong Wang and Fa Peng Huang},
  journal= {arXiv preprint arXiv:2603.05182},
  year   = {2026}
}

Comments

34 pages, 8 figures