Quantum Black hole--White hole entangled states
Abstract
We investigate the quantum deformation of the Wheeler--DeWitt equation of a Schwarzchild black hole. Specifically, the quantum deformed black hole is a quantized model constructed from the quantum Heisenberg--Weyl group. We show that the event horizon area and the mass are quantized, degenerate, and bounded. The degeneracy of states indicates entangled quantum black hole/white hole states. Accordingly, quantum deformation provides a new framework to examine Einstein--Rosen wormhole solutions. Besides, we obtain the mass, the temperature, and the entropy of the q-deformed quantum Schwarzschild black hole. We find an upper bound on the mass of a black hole/white hole pair. Also, at the quantum deformation level, the entropy of the black hole contains three parts: the usual Bekenstein--Hawking entropy, the logarithmic term, and a Cube of usual black hole entropy.
Cite
@article{arxiv.2203.09968,
title = {Quantum Black hole--White hole entangled states},
author = {S. Jalalzadeh},
journal= {arXiv preprint arXiv:2203.09968},
year = {2022}
}
Comments
7 pages, 1 figure, to appear in Phys. Lett. B