Vacuum entanglement probes for ultra-cold atom systems
Abstract
This study explores the transfer of nonclassical correlations from an ultra-cold atom system to a pair of pulsed laser beams. Through nondestructive local probe measurements, we introduce an alternative to destructive techniques for mapping BEC entanglement. Operating at ultralow temperatures, the setup emulates a relativistic vacuum field, using lasers as Unruh-DeWitt detectors for phonons. The vacuum holds intrinsic entanglement, transferable to distant probes briefly interacting with it - a phenomenon termed ``entanglement harvesting''. Our study accomplishes two primary objectives: first, establishing a mathematical equivalence between a pair of pulsed laser probes interacting with an effective relativistic field and the entanglement harvesting protocol; and second, to closely examine the potential and persisting obstacles for realising this protocol in an ultra-cold atom experiment.
Cite
@article{arxiv.2308.07892,
title = {Vacuum entanglement probes for ultra-cold atom systems},
author = {Cisco Gooding and Allison Sachs and Robert B. Mann and Silke Weinfurtner},
journal= {arXiv preprint arXiv:2308.07892},
year = {2023}
}
Comments
12 pages and 3 figures, including the Supplemental Material / Appendices