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Dual matter-induced oscillatory dynamics and thermodynamic analysis around black holes

M. YousafDepartment of Mathematics, Virtual University of Pakistan, 54-Lawrence Road, Lahore 54000, PakistanAbdelmalek BouzenadaLaboratory of Theoretical and Applied Physics, Echahid Cheikh Larbi Tebessi University, Tebessa 12001, AlgeriaAllah DittaDepartment of Mathematics, School of Science, University of Management and Technology, Lahore 54000, PakistanErtan GüdekliDepartment of Physics, Faculty of Science, Istanbul University, Istanbul 34134, TurkeyMagda Abd El-RahmanDepartment of Physics, College of Science, King Khalid University, Abha 61413, Saudi ArabiaIkhtiyor SaidovTashkent State Technical University, Tashkent 100095, UzbekistanFarruh AtamurotovKimyo International University in Tashkent, Shota Rustaveli str. 156, Tashkent 100121, Uzbekistan
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Аннотация

In this work, we investigate the dynamical and thermodynamic characteristics of a static, spherically symmetric black hole (BH) immersed in an anisotropic fluid within the framework of an extended theory of gravity. The spacetime geometry is specified by the metric function [Formula: see text], which depends on the parameters [Formula: see text], [Formula: see text], [Formula: see text], and [Formula: see text], as well as on the cosmological constant [Formula: see text]. In this case, using the Hamiltonian formalism, the motion of neutral test particles is analyzed through the effective potential, leading to analytical expressions for the specific energy, angular momentum, and effective force. The position of the innermost stable circular orbits (ISCOs) is obtained, showing that increasing [Formula: see text], [Formula: see text], and [Formula: see text] deepens and narrows the potential well, moving the ISCOs closer to the horizon and strengthening the gravitational attraction compared to the Schwarzschild case. Small perturbations around stable orbits yield the fundamental frequencies, which increase with the coupling parameters, suggesting a link with quasi-periodic oscillations (QPOs). In this context, using the Barrow entropy formalism, we compute the geometric mass, Hawking temperature, and entropy, showing that [Formula: see text], [Formula: see text], [Formula: see text], [Formula: see text], and [Formula: see text] affect the thermal stability and emission rate of the BH.

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