Particle dynamics and the accretion disk around a Self-dual Black Hole immersed in a magnetic field in Loop Quantum Gravity

IF 5 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS Physics of the Dark Universe Pub Date : 2024-11-26 DOI:10.1016/j.dark.2024.101743
Uktamjon Uktamov , Mirzabek Alloqulov , Sanjar Shaymatov , Tao Zhu , Bobomurat Ahmedov
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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 the ISCO parameters (i.e., rISCO, lISCO, EISCO, vISCO, and ΩISCO) for magnetic dipoles and electrically charged particles, providing detailed values. Furthermore, we examine the trajectories of charged particles under various scenarios resulting from the quantum correction parameter P. Finally, analyzing the ISCO parameters that define the inner edge of the accretion disk, we explore the accretion disk around a self-dual black hole in LQG. We delve into the electromagnetic radiation flux, temperature, and differential luminosity as radiation properties of the accretion disk in detail. We show that the quantum correction parameter shifts the profile of the electromagnetic flux and accretion disk temperature towards the central object, leading to a slight increase in these quantities.
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在环量子引力中沉浸在磁场中的自对偶黑洞的粒子动力学和吸积盘
本文研究了环量子引力(LQG)中处于渐近均匀磁场中的自对偶黑洞附近磁偶极子和带电粒子的运动。探讨了量子校正参数和电磁相互作用对粒子测地线的影响。我们推导了LQG中自对偶黑洞的场方程,并确定了其电磁四向量势。我们详细研究了磁偶极子和带电粒子的最内层稳定圆轨道(ISCOs),证明量子校正参数对ISCO半径有显著影响,导致其缩小。此外,由于磁场的相互作用,我们发现磁偶极子的ISCO半径大于带电粒子的ISCO半径。我们研究了磁偶极子和带电粒子的ISCO参数(即,rISCO, lISCO, EISCO, vISCO和ΩISCO),提供了详细的值。此外,我们还研究了由量子修正参数p引起的各种情况下带电粒子的运动轨迹。最后,我们分析了定义吸积盘内缘的ISCO参数,探索了LQG中自对偶黑洞周围的吸积盘。我们详细研究了吸积盘的电磁辐射通量、温度和差光度等辐射特性。我们发现,量子校正参数将电磁通量和吸积盘温度的剖面向中心物体移动,导致这些量略有增加。
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来源期刊
Physics of the Dark Universe
Physics of the Dark Universe ASTRONOMY & ASTROPHYSICS-
CiteScore
9.60
自引率
7.30%
发文量
118
审稿时长
61 days
期刊介绍: Physics of the Dark Universe is an innovative online-only journal that offers rapid publication of peer-reviewed, original research articles considered of high scientific impact. The journal is focused on the understanding of Dark Matter, Dark Energy, Early Universe, gravitational waves and neutrinos, covering all theoretical, experimental and phenomenological aspects.
期刊最新文献
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