Rotating black holes and exotic compact objects in the Kerr/CFT correspondence within Rastall gravity
Muhammad Fitrah Alfian Rangga Sakti, Agus Suroso, Anto Sulaksono, and, Freddy Permana Zen

TL;DR
This paper explores the properties of rotating black holes and exotic compact objects within Rastall gravity using Kerr/CFT correspondence, revealing how Rastall coupling influences observable features like gravitational echoes and time delays.
Contribution
It systematically analyzes Kerr-Newman-NUT-Kiselev black holes in Rastall gravity and extends the Kerr/CFT correspondence to ECOs, highlighting the role of Rastall coupling in gravitational signatures.
Findings
Rastall coupling significantly affects absorption cross-sections and echo time delays.
Quantum membrane leads to gravitational echoes with oscillatory absorption features.
Rastall gravity signatures can be probed through time-delay observations.
Abstract
Quantum gravitational effects on the near horizon may alter the black hole's horizon drastically to be partially reflective, portrayed by a quantum membrane. With this modification, the object can be considered as an exotic compact object (ECO). Quantum effects on the strong gravitational regime may also lead to a non-conserved matter tensor that can be described phenomenologically using Rastall gravity. In this work, we study the properties of black holes and ECOs within Rastall gravity using Kerr/CFT correspondence. We systematically investigate the properties of the most general rotating black hole solutions in Rastall gravity, i.e., Kerr-Newman-NUT-Kiselev, and reveal its hidden conformal symmetry. The Cardy microscopic entropy formula and absorption cross-sections from 2D CFT are computed and then matched with gravity calculation. We also extend the dual CFT analysis for studying…
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