Thermodynamic topology of AdS black holes within non-commutative geometry and Barrow entropy

IF 2.8 3区 物理与天体物理 Q2 PHYSICS, PARTICLES & FIELDS Nuclear Physics B Pub Date : 2025-02-13 DOI:10.1016/j.nuclphysb.2025.116840
Aram Bahroz Brzo , Saeed Noori Gashti , B. Pourhassan , S. Beikpour
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Abstract

In this paper, we explore the thermodynamic topology of Schwarzschild-AdS black holes within the framework of non-commutative geometry and Barrow entropy. We provide an overview of the Schwarzschild-AdS black hole and discuss the significance of Barrow entropy. We determine the topological charges and discuss the implications of topological classifications. Key findings include the impact of the strength of the noncommutative geometry parameter α and deformation parameter δ on the number of topological charges. When δ raised from Barrow entropy is zero, the structure faces Bekenstein-Hawking entropy, resulting in a single topological charge (ω=+1). However, the presence of parameter δ leads to variations in the number of topological charges. However, with specific values of α, δ the topological charges are determined as (ω=+1,1). We also examine the photon spheres of the black hole for different values of the parameter α which showed the photon spheres with topological charge (−1), indicating the preservation of the black hole structure. These results are illustrated and summarized in various figures and tables.
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非交换几何中 AdS 黑洞的热力学拓扑和巴罗熵
在本文中,我们在非交换几何和巴罗熵的框架下探讨了Schwarzschild-AdS黑洞的热力学拓扑。我们概述了史瓦西- ads黑洞,并讨论了巴罗熵的意义。我们确定了拓扑电荷,并讨论了拓扑分类的含义。主要发现包括非交换几何参数α和变形参数δ强度对拓扑电荷数的影响。当巴罗熵δ为零时,结构面临贝肯斯坦-霍金熵,导致单一拓扑电荷(ω=+1)。然而,参数δ的存在导致拓扑电荷数的变化。然而,对于特定的α、δ值,拓扑电荷确定为(ω=+1,−1)。我们还研究了不同α值的黑洞光子球,α值表明光子球具有拓扑电荷(−1),表明黑洞结构保持不变。这些结果用各种图表和表格加以说明和总结。
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来源期刊
Nuclear Physics B
Nuclear Physics B 物理-物理:粒子与场物理
CiteScore
5.50
自引率
7.10%
发文量
302
审稿时长
1 months
期刊介绍: Nuclear Physics B focuses on the domain of high energy physics, quantum field theory, statistical systems, and mathematical physics, and includes four main sections: high energy physics - phenomenology, high energy physics - theory, high energy physics - experiment, and quantum field theory, statistical systems, and mathematical physics. The emphasis is on original research papers (Frontiers Articles or Full Length Articles), but Review Articles are also welcome.
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