Joint Constraints on Quantum Oppenheimer--Snyder Black Holes from High-Frequency Quasi-Periodic Oscillations in X-ray Binary Systems and the S2 Star Orbit
A. Errehymy, Y. Khedif, M. Daoud, B. Turimov, S. Usanov, F. Turaev, Z. Yasakov
Abstract
We study a quantum-corrected version of the Oppenheimer--Snyder (OS) spacetime in which classical collapse is modified by a single effective-parameter \(α\), representing small-quantum-gravitational effects in a phenomenologically rescaled-form. Although the correction enters through a term proportional to \(αM2/r4\), it produces noticeable changes in the strong-field region while leaving weak-field physics almost unchanged. One of the main results is the appearance of a minimum-mass for horizon-formation, \(M (0.5-1.2)\,M\) for the effective-parameter \(α≈0.22\). We emphasize that this \(M\) is expressed in terms of the effective-parameter \(α\); in terms of the bare loop-quantum-gravity (LQG) parameter, \(M MPl10-5\)~g, consistent with the theoretical-expectation. Orbital properties are also slightly modified, with the innermost-stable-circular-orbit (ISCO) shifting to \(r ISCO=6M-α/(12M)\), giving corrections-of-order \( 10-4 \) for stellar-black-holes and \( 10-10\) for Sgr A. In the same region, radial epicyclic frequencies change by about \(5\%-10\%\) near \(r5M\), while vertical modes are less affected, leading to small but structured shifts in quasi-periodic oscillation (QPO) behavior. Using four X-ray binaries (GRS 1915+105, XTE J1550-564, XTE J1859+226, GRO J1655-40), we find a consistent range \(α=0.220.10\), with masses between \(5.4-12.4\,M\) and emission radii \(r/M 5.5 - 8.6\). The observed QPO frequencies, lying in the range \(100-450\) Hz, are well reproduced within this framework. Weak-field tests such as S2 and Mercury still allow \(f sp=1.10 0.19\), leaving room for these small strong-gravity corrections.
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