English

Entanglement Islands from Hilbert Space Reduction

High Energy Physics - Theory 2025-05-14 v6 General Relativity and Quantum Cosmology Quantum Physics

Abstract

In this paper we propose a mechanism to generate entanglement islands in quantum systems from a purely quantum information perspective. More explicitly we show that, if we impose certain constraints on a quantum system by projecting out certain states in the Hilbert space, it is possible that for all the states remaining in the reduced Hilbert space, there exits subsets IaI_a whose states are encoded in the states of another subset Ra\mathcal{R}_a. Then the subsets {Ia}\{I_a\} are just the entanglement islands of the corresponding subsets {Ra}\{\mathcal{R}_a\}. We call such a system self-encoded, and find that the entanglement entropy in such systems should be calculated by a new island formula. We give a comparison between our new island formula and island formula in gravitational theories. Inspired by our mechanism, we propose a simulation of the AdS/BCFT correspondence and the island phases in this context via a holographic CFT2_2 with a special Weyl transformation.

Keywords

Cite

@article{arxiv.2211.17004,
  title  = {Entanglement Islands from Hilbert Space Reduction},
  author = {Debarshi Basu and Qiang Wen and Shangjie Zhou},
  journal= {arXiv preprint arXiv:2211.17004},
  year   = {2025}
}

Comments

28pages. Comments are very welcome; V2 references updated, minor revision; V3, footnote 5 added; V4, major revision on the presentation, and more discussion on the application of the new island formula in gravitational theories; V5, major revision by clarifying the differences between the two island formulas; V6: version to appear in EPJ Plus

R2 v1 2026-06-28T07:18:09.811Z