English

Non-extremal Island in de Sitter Gravity

High Energy Physics - Theory 2025-03-14 v3 General Relativity and Quantum Cosmology

Abstract

This paper investigates the challenges and resolutions in computing the entanglement entropy for the quantum field theory coupled to de Sitter (dS) gravity along a timelike boundary. The conventional island formula, originally designed to calculate the fine-grained entropy for a non-gravitational system coupled to anti-de Sitter (AdS) gravity, encounters difficulties in de Sitter gravitational spacetime, failing to provide a physically plausible extremal island. To overcome these problems, we introduce a doubly holographic model by embedding a dS2_2 braneworld in an AdS3_3 bulk spacetime. This approach facilitates the computation of entanglement entropy through holographic correlation functions, effectively circumventing the constraints of the island formula. We demonstrate that the correct recipe for calculating entanglement entropy with dS gravity involves the non-extremal island, whose boundary is instead defined at the edge of the dS gravitational region. Our findings indicate that, during the island phase, the entanglement wedge of the non-gravitational bath includes the entire dS gravitational space. Using the second variation formula, we further show that the existence of a locally minimal surface anchored on the gravitational brane is intrinsically linked to the extrinsic curvature of the brane.

Keywords

Cite

@article{arxiv.2407.21617,
  title  = {Non-extremal Island in de Sitter Gravity},
  author = {Peng-Xiang Hao and Taishi Kawamoto and Shan-Ming Ruan and Tadashi Takayanagi},
  journal= {arXiv preprint arXiv:2407.21617},
  year   = {2025}
}

Comments

64 pages, 20 figures; v2:added an important reference; v3: published version

R2 v1 2026-06-28T17:59:22.041Z