Strong Gravitational Lensing and Shadows by Quantum Schwarzschild Black Hole in Homogeneous Plasma

IF 1.7 4区 物理与天体物理 Q3 PHYSICS, MULTIDISCIPLINARY
Rukkiyya V P, Sini R
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Abstract

In this paper, we investigate the strong gravitational effects of a quantum Schwarzschild black hole in the presence of homogeneous plasma, focusing on the impact of the polymerization parameter \(\lambda \). The analytical expression for the deflection angle in a strong field limit in a quantum Schwarzschild black hole surrounded by homogeneous plasma is derived. It is found that both the polymerization parameter \(\lambda \) and the presence of uniform plasma can lead to an increase in the strong field parameters \(\overline{a}\) and \(\overline{b}\) and deflection angle \(\alpha \)(b). Further, we performed the numerical calculation for the lensing observables, such as the angular position of the innermost image, the angular separation between the outermost image and the remaining image, the relative magnification, and the time delay between images on opposite sides of the lens for the supermassive black hole SgrA* in strong field limit, considering the effects of homogeneous plasma. We also studied the effect of plasma on the radius of the shadow. In conclusion, the polymerization parameter \(\lambda \) and the presence of homogeneous plasma significantly affect the characteristics of shadows and strong gravitational lensing.

Abstract Image

均匀等离子体中量子史瓦西黑洞的强引力透镜和阴影
在本文中,我们研究了均匀等离子体存在下量子史瓦西黑洞的强引力效应,重点研究了聚合参数\(\lambda \)的影响。导出了被均匀等离子体包围的量子史瓦西黑洞在强场极限处偏转角的解析表达式。发现聚合参数\(\lambda \)和均匀等离子体的存在都会导致强场参数\(\overline{a}\)和\(\overline{b}\)以及偏转角\(\alpha \)的增加(b)。此外,我们对透镜观测值进行了数值计算,如最内层像的角位置、最外层像与剩余像之间的角间距、相对放大倍率、在强场极限下,考虑均匀等离子体的影响,超大质量黑洞SgrA*透镜两侧图像之间的时间延迟。我们还研究了等离子体对阴影半径的影响。综上所述,聚合参数\(\lambda \)和均匀等离子体的存在显著影响了阴影和强引力透镜的特性。
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来源期刊
CiteScore
2.50
自引率
21.40%
发文量
258
审稿时长
3.3 months
期刊介绍: International Journal of Theoretical Physics publishes original research and reviews in theoretical physics and neighboring fields. Dedicated to the unification of the latest physics research, this journal seeks to map the direction of future research by original work in traditional physics like general relativity, quantum theory with relativistic quantum field theory,as used in particle physics, and by fresh inquiry into quantum measurement theory, and other similarly fundamental areas, e.g. quantum geometry and quantum logic, etc.
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