English

Infrared Regularization and Finite Size Dynamics of Entanglement Entropy in Schwarzschild Black Hole

High Energy Physics - Theory 2023-12-11 v5 General Relativity and Quantum Cosmology

Abstract

In this paper, infrared regularization of semi-infinite entangling regions and island formation for regions of finite size in the eternal Schwarzschild black hole are considered. We analyze whether the complementarity property and pure state condition of entanglement entropy can be preserved in the given approximation. We propose a special regularization that satisfies these two properties. With regard to entangling regions of finite size, we derive two fundamental types of them, which we call "mirror-symmetric" (MS) and "asymmetric" (AS). For MS regions, we discover a discontinuous evolution of the entanglement entropy of Hawking radiation due to finite lifetime of the island. The entanglement entropy of matter for semi-infinite regions in two-sided Schwarzschild black hole does not follow the Page curve. The lifetime of AS regions is bounded from above due to the phenomenon that we call "Cauchy surface breaking". Shortly before this breaking, the island configuration becomes non-symmetric. For both types of finite regions, there is a critical size, below which the island never dominates. For regions smaller than some other critical size, the island does not emerge. Finally, we show that the island prescription does not help to solve the information paradox for certain finite regions.

Keywords

Cite

@article{arxiv.2209.00036,
  title  = {Infrared Regularization and Finite Size Dynamics of Entanglement Entropy in Schwarzschild Black Hole},
  author = {D. S. Ageev and I. Ya. Aref'eva and A. I. Belokon and A. V. Ermakov and V. V. Pushkarev and T. A. Rusalev},
  journal= {arXiv preprint arXiv:2209.00036},
  year   = {2023}
}

Comments

v1: 55 pages, 19 figures; v2: 57 pages, 19 figures, references added, Sec. 5 presentation improved; v3: 22 pages, 24 figures, title changed, presentation improved, details added, references added, typos corrected, style changed; v4: 22 pages, 24 figures, notations clarified; v5: 22 pages, 23 figures, one figure removed, some statements have been slightly corrected, new links have been added