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Probing quantum corrected black hole through astrophysical tests with the orbit of S2 star and quasiperiodic oscillations

Tursunali XamidovInstitute for Theoretical Physics & Cosmology, Zhejiang University of Technology, Hangzhou 310023, ChinaSanjar ShaymatovCenter for Theoretical Physics, Khazar University, Baku AZ1096, AzerbaijanBobomurat AhmedovInstitute for Advanced Studies, New Uzbekistan University, Movarounnahr str. 1, Tashkent 100000, UzbekistanTao ZhuInstitute for Theoretical Physics & Cosmology, Zhejiang University of Technology, Hangzhou 310023, China
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Abstract In this study, we explore the influence of the quantum correction parameter ξ on the motion of particles and the properties of quasiperiodic oscillations (QPOs) around a quantum-corrected black hole (QCBH). We first analyze the geodesics of a test particle and derive weak-field constraints on parameter ξ from the perihelion precession of orbits, using observations from the Solar System and the S2 star's orbit around SgrA ★ supermassive black hole in the center of our galaxy. We obtain ξ ≤ 0.01869 and ξ ≤ 0.73528 using the analysis of Solar System observations and the orbit of the S2 star around SgrA ★ , respectively. In the strong-field regime, we examine the dynamics of epicyclic motion around astrophysical black holes and, using observational data from four QPO sources and the Markov Chain Monte Carlo (MCMC) method, we determine the upper constraint ξ ≤ 2.086. Our results provide new insights into the effects of quantum corrections on black hole spacetimes and highlight the potential of QPOs as a probe for testing quantum gravity in astrophysical environments.

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