Thin Accretion Disks around Rotating Charged Black Holes in an Effective Higher-Curvature Spacetime
arXiv:2605.13797 · doi:10.1016/j.jheap.2026.100637
Abstract
We investigate the structure and emission properties of a thin accretion disk around a rotating charged black hole described by an effective higher-curvature-inspired spacetime, constructed as a phenomenological deformation of the Kerr Newman geometry. In this framework, the deformation is introduced through a modification of the metric function by an effective Gauss-Bonnet-like parameter , such that the spacetime reduces to the standard Kerr Newman solution in the limit . Adopting a kinematical approach, we use test-particle motion to derive the specific energy, specific angular momentum, and angular velocity of circular orbits, and analyze the effects of the parameters and charge on the innermost stable circular orbit (ISCO), radiative efficiency, radiation flux, temperature, and differential luminosity of the disk. We find that increasing shifts the ISCO inward and enhances the disk's radiation flux and temperature, while the presence of charge suppresses these quantities due to electrostatic effects. Our results demonstrate that effective higher curvature deformations of rotating black hole spacetimes can lead to observable deviations from the Kerr case, highlighting accretion disks as sensitive probes of strong-gravity effects without relying on a specific underlying gravitational theory.
31 pages,10 figures, 1 table. Accepted for Publication in Journal of High Energy Astrophysics
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