Topological AdS black holes surrounded by Chaplygin dark fluid: From stability to geometrothermodynamic analysis

被引:8
|
作者
Sekhmani, Y. [1 ]
Luciano, G. G. [2 ]
Rayimbaev, J. [3 ,4 ,5 ,6 ]
Jasim, M. K. [7 ]
Al-Badawi, A. [8 ]
Maurya, S. K. [7 ]
机构
[1] Ratbay Myrzakulov Eurasian Int Ctr Theoret Phys, Astana 010009, Kazakhstan
[2] Univ Lleida, Dept Chem Phys & Environm & Soil Sci, Escola Politecn Super, Ave Jaume II 69, Lleida 25001, Spain
[3] Natl Res Univ TIIAME, Inst Fundamental & Appl Res, Kori Niyoziy 39, Tashkent 100000, Uzbekistan
[4] Univ Tashkent Appl Sci, Gavhar Str 1, Tashkent 100149, Uzbekistan
[5] Shahrisabz State Pedag Inst, Shahrisabz Str 10, Shahrisabz 181301, Uzbekistan
[6] Tashkent State Tech Univ, Tashkent 100095, Uzbekistan
[7] Univ Nizwa, Coll Arts & Sci, Dept Math & Phys Sci, Nizwa 616, Oman
[8] Al Hussein Bin Talal Univ, Dept Phys, POB 20, Maan 71111, Jordan
来源
PHYSICS OF THE DARK UNIVERSE | 2024年 / 46卷
关键词
Topological AdS black holes; Chaplygin dark fluid; Geometrothermodynamic; Higher-dimensional black holes; Energy conditions; THERMODYNAMIC GEOMETRY; METRIC GEOMETRY; ENERGY; GAS;
D O I
10.1016/j.dark.2024.101567
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Implementing the concept of Dark Fluid with a Chaplygin-like equation of state within General Relativity, we construct a new higher-dimensional, static, and spherically symmetric anti-de Sitter (AdS) black hole solution. Energy conditions are explored alongside curvature singularity tools. The inspection at the level of the phase structure and P - v critical behavior is carried out in the context of the extended phase space, where the cosmological constant appears as pressure. Our findings disclose non-trivial similarities between the small/large phase transition of AdS black holes surrounded by Chaplygin dark fluid and van der Waals systems' liquid/gas phase transition. This analysis offers insights into the physical interpretation of the P - v diagram and identifies critical exponents that reveal the scaling behavior of thermodynamic quantities close to criticality in a universal manner. We finally deepen our understanding of the thermodynamic properties and microstructure of AdS black holes by leveraging the geometrothermodynamic formalism. Specifically, we employ tools, including Weinhold, Ruppeiner, Hendi-Panahiyan-Eslam-Momennia (HPEM), and Quevedo classes I and II. We show that each class of metrics predicts either the physical limitation point and/or the phase-transition critical points, with HPEM and Quevedo formulations providing richer information about the phase transitions. Altogether, this study contributes to advancing our knowledge of the role of Chaplygin gas in General Relativity and thoroughly examining the thermodynamic phase structure of high-dimensional AdS black holes under extreme conditions.
引用
收藏
页数:18
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