Particle dynamics and the accretion disk around a Self-dual Black Hole immersed in a magnetic field in Loop Quantum Gravity
Uktamjon Uktamov, Mirzabek Alloqulov, Sanjar Shaymatov, Tao, Zhu, Bobomurat Ahmedov

TL;DR
This study investigates how quantum corrections in Loop Quantum Gravity affect particle motion, ISCO properties, and accretion disk radiation around a self-dual black hole immersed in a magnetic field.
Contribution
It introduces a detailed analysis of particle dynamics and accretion disk properties influenced by quantum corrections in a self-dual black hole within LQG.
Findings
Quantum correction parameter shrinks the ISCO radius.
Magnetic dipoles have larger ISCO radii than charged particles.
Quantum effects slightly increase accretion disk flux and temperature.
Abstract
In this paper, we study the motion of magnetic dipoles and electrically charged particles in the vicinity of a self-dual black hole in Loop Quantum Gravity (LQG) immersed in an external asymptotically uniform magnetic field. We explore the effects of the quantum correction parameter and electromagnetic interactions on the particle geodesics. We derive the field equations and determine the electromagnetic four-vector potential for the case of a self-dual black hole in LQG. We investigate the innermost stable circular orbits (ISCOs) for both magnetic dipoles and electrically charged particles in detail, demonstrating that the quantum correction parameter significantly influences on the ISCO radius, causing it to shrink. Additionally, we show that the ISCO radius of magnetic dipoles is greater than that of electrically charged particles due to the magnetic field interaction. We investigate…
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