Quantum entanglement of Hawking-Partner modes in expanding cavities
Jos\'e Manuel Montes-Armenteros, Javier Olmedo

TL;DR
This paper explores quantum entanglement between Hawking-partner modes in an expanding cavity, revealing that the cavity acts as a squeezing device and that entanglement decreases with higher energy modes, with implications for laboratory observation.
Contribution
It introduces a numerical analysis of Hawking-partner entanglement in an expanding cavity, comparing partner mode reconstruction methods and examining entanglement behavior across energy regimes.
Findings
Expanding cavity acts as a squeezing device for Hawking-partner pairs.
Quantum entanglement decreases toward ultraviolet modes, especially at high energies.
Partner modes do not commute, indicating complex multimode entanglement structure.
Abstract
This article investigates quantum entanglement generated within a one-dimensional cavity where one boundary undergoes prescribed acceleration, a setup designed to mimic aspects of Hawking radiation. We quantify quantum correlations using logarithmic negativity for bipartitions where subsystem is a given mode and subsystem is the rest of the system. For initial pure states, we also consider a given mode and reconstruct its partner using the Hotta-Sch\"utzhold-Unruh formula, obtaining identical results. Interestingly, this last method offers notable computational efficiency. However, partner modes do not commute, due to the nontrivial multimode entanglement structure. Hence, a pairwise description will not be suitable for describing the full system. Besides, our findings reveal that the expanding cavity effectively acts as a squeezing device, with Hawking-partner pairs largely…
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Taxonomy
TopicsQuantum Electrodynamics and Casimir Effect · Mechanical and Optical Resonators · Quantum Information and Cryptography
