Quantum oscillations in the black hole horizon
C. Corda, F. Feleppa, F. Tamburini, and I. Licata

TL;DR
This paper models black hole horizons as quantum oscillators, deriving entropy corrections, confirming a Bohr-like quantum structure, and addressing the black hole information paradox through a quantum gravitational approach.
Contribution
It introduces a quantum oscillator model for black hole horizons, providing new entropy corrections and linking quantum structure to Hawking radiation and information paradox resolution.
Findings
Entropy expressed as a function of quantum number with corrections
Reduced Bekenstein-Hawking entropy coefficient to a quarter
Consistency of semi-classical approach with quantum results for large quantum numbers
Abstract
By applying Rosen's quantization approach to the historical Oppenheimer and Snyder gravitational collapse and by setting the constraints for the formation of the Schwarzschild black hole (SBH), in a previous paper [1] two of the Authors (CC and FF) found the gravitational potential, the Schrodinger equation, the solution for the energy levels, the area quantum and the quantum representation of the ground state at the Planck scale of the SBH. Such results are consistent with previous ones in the literature. It was also shown that the traditional classical singularity in the core of the SBH is replaced by a quantum oscillator describing a non-singular two-particle system where the two components, named the "nucleus" and the "electron", strongly interact with each other through a quantum gravitational interaction. In agreement with the de Broglie hypothesis, the "electron" is interpreted…
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