Energy Extraction from Loop Quantum Black Holes: The Role of Magnetic Penrose Process and Quantum Gravity Effects with Astrophysical Insights
Tursunali Xamidov, Pankaj Sheoran, Sanjar Shaymatov, Tao Zhu

TL;DR
This paper investigates how quantum gravity corrections from Loop Quantum Gravity affect energy extraction via the magnetic Penrose process in rotating black holes, with implications for astrophysical black hole candidates and high-energy particle acceleration.
Contribution
It introduces a quantum-corrected rotating black hole model and analyzes its impact on the efficiency of the magnetic Penrose process, contrasting with classical Kerr black holes.
Findings
Efficiency decreases with quantum parameter $\epsilon$
Ergosphere structure becomes more complex with increasing $\epsilon$
Astrophysical constraints suggest potential for high-energy proton acceleration
Abstract
In this study, we explore the influence of quantum gravitational corrections, derived from Loop Quantum Gravity (LQG), on the efficiency of the magnetic Penrose process (MPP) in black hole (BH) environments. We begin by analyzing the rotating Loop Quantum Black Hole (LQBH) metric, describing the structure of the event horizon and ergosphere as functions of the quantum parameter , with representing the Immirzi parameter and the polymeric parameter, and the spin parameter . These modifications provide a novel setting for exploring the dynamics of charged particles near the LQBH and evaluating the resultant energy extraction through the MPP. Interestingly, for a given value of the LQBH parameter , we observe that the ergosphere region of the LQBH exhibits a more intricate structure compared to its classical counterpart, the Kerr BH, as…
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Taxonomy
TopicsNoncommutative and Quantum Gravity Theories · Black Holes and Theoretical Physics · Quantum Electrodynamics and Casimir Effect
