Thermodynamics and logarithmic corrections of symmergent black holes
In this paper, we study quantum gravity effect on the symmergent black hole which is derived from quadratic-curvature gravity. To do so, we use the Klein–Gordon equation which is modified by generalized uncertainty principle (GUP). After solving the field equations, we examine the symmergent black h...
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Elsevier
2023-03-01
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Series: | Results in Physics |
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Online Access: | http://www.sciencedirect.com/science/article/pii/S2211379723000931 |
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author | Riasat Ali Rimsha Babar Zunaira Akhtar Ali Övgün |
author_facet | Riasat Ali Rimsha Babar Zunaira Akhtar Ali Övgün |
author_sort | Riasat Ali |
collection | DOAJ |
description | In this paper, we study quantum gravity effect on the symmergent black hole which is derived from quadratic-curvature gravity. To do so, we use the Klein–Gordon equation which is modified by generalized uncertainty principle (GUP). After solving the field equations, we examine the symmergent black hole’s tunneling and Hawking temperature. We explore the graphs of the temperature through the outer horizon to check the GUP influenced conditions of symmergent black hole stability. We also explain how symmergent black holes behave physically when influenced by quantum gravity. The impacts of thermal fluctuations on the thermodynamics of a symmergent black holes spacetime are examined. We first evaluate the model under consideration’s thermodynamic properties, such as its Hawking temperature, angular velocity, entropy, and electric potential. We evaluate the logarithmic correction terms for entropy around the equilibrium state in order to examine the impacts of thermal fluctuations. In the presence of these correction terms, we also examine the viability of the first law of thermodynamics. Finally, we evaluate the system’s stability using the Hessian matrix and heat capacity. It is determined that a stable model is generated by logarithmic corrections arising from thermal fluctuations. |
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institution | Directory Open Access Journal |
issn | 2211-3797 |
language | English |
last_indexed | 2024-04-10T00:29:44Z |
publishDate | 2023-03-01 |
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spelling | doaj.art-5a62b22626414ada9773f5a1d1d596422023-03-15T04:27:52ZengElsevierResults in Physics2211-37972023-03-0146106300Thermodynamics and logarithmic corrections of symmergent black holesRiasat Ali0Rimsha Babar1Zunaira Akhtar2Ali Övgün3Department of Mathematics, GC University Faisalabad Layyah Campus, Layyah 31200, PakistanDivision of Science and Technology, University of Education, Township, Lahore 54590, PakistanDivision of Science and Technology, University of Education, Township, Lahore 54590, PakistanPhysics Department, Eastern Mediterranean University, Famagusta, 99628 North Cyprus, via Mersin 10, Turkey; Corresponding author.In this paper, we study quantum gravity effect on the symmergent black hole which is derived from quadratic-curvature gravity. To do so, we use the Klein–Gordon equation which is modified by generalized uncertainty principle (GUP). After solving the field equations, we examine the symmergent black hole’s tunneling and Hawking temperature. We explore the graphs of the temperature through the outer horizon to check the GUP influenced conditions of symmergent black hole stability. We also explain how symmergent black holes behave physically when influenced by quantum gravity. The impacts of thermal fluctuations on the thermodynamics of a symmergent black holes spacetime are examined. We first evaluate the model under consideration’s thermodynamic properties, such as its Hawking temperature, angular velocity, entropy, and electric potential. We evaluate the logarithmic correction terms for entropy around the equilibrium state in order to examine the impacts of thermal fluctuations. In the presence of these correction terms, we also examine the viability of the first law of thermodynamics. Finally, we evaluate the system’s stability using the Hessian matrix and heat capacity. It is determined that a stable model is generated by logarithmic corrections arising from thermal fluctuations.http://www.sciencedirect.com/science/article/pii/S2211379723000931Black holeSymmergent gravityModified lagrangian equationHawking radiationQuantum tunnelingWKB method. first order correction of thermodynamics |
spellingShingle | Riasat Ali Rimsha Babar Zunaira Akhtar Ali Övgün Thermodynamics and logarithmic corrections of symmergent black holes Results in Physics Black hole Symmergent gravity Modified lagrangian equation Hawking radiation Quantum tunneling WKB method. first order correction of thermodynamics |
title | Thermodynamics and logarithmic corrections of symmergent black holes |
title_full | Thermodynamics and logarithmic corrections of symmergent black holes |
title_fullStr | Thermodynamics and logarithmic corrections of symmergent black holes |
title_full_unstemmed | Thermodynamics and logarithmic corrections of symmergent black holes |
title_short | Thermodynamics and logarithmic corrections of symmergent black holes |
title_sort | thermodynamics and logarithmic corrections of symmergent black holes |
topic | Black hole Symmergent gravity Modified lagrangian equation Hawking radiation Quantum tunneling WKB method. first order correction of thermodynamics |
url | http://www.sciencedirect.com/science/article/pii/S2211379723000931 |
work_keys_str_mv | AT riasatali thermodynamicsandlogarithmiccorrectionsofsymmergentblackholes AT rimshababar thermodynamicsandlogarithmiccorrectionsofsymmergentblackholes AT zunairaakhtar thermodynamicsandlogarithmiccorrectionsofsymmergentblackholes AT aliovgun thermodynamicsandlogarithmiccorrectionsofsymmergentblackholes |