English

Finite-temperature Rydberg arrays: quantum phases and entanglement characterization

Quantum Physics 2024-10-02 v2

Abstract

As one of the most prominent platforms for analog quantum simulators, Rydberg atom arrays are a promising tool for exploring quantum phases and transitions. While the ground state properties of one-dimensional Rydberg systems are already thoroughly examined, we extend the analysis towards the finite-temperature scenario. For this purpose, we develop a tensor network-based numerical toolbox for constructing the quantum many-body states at thermal equilibrium, which we exploit to probe classical correlations as well as entanglement monotones. We clearly observe ordered phases continuously shrinking due to thermal fluctuations at finite system sizes. Moreover, by examining the entanglement of formation and entanglement negativity of a half-system bipartition, we numerically confirm that a conformal scaling law of entanglement extends from the zero-temperature critical points into the low-temperature regime.

Keywords

Cite

@article{arxiv.2405.18477,
  title  = {Finite-temperature Rydberg arrays: quantum phases and entanglement characterization},
  author = {Nora Reinić and Daniel Jaschke and Darvin Wanisch and Pietro Silvi and Simone Montangero},
  journal= {arXiv preprint arXiv:2405.18477},
  year   = {2024}
}

Comments

11 pages, 7 figures; new appendix for convergence analysis, new subsection for entanglement extraction, minor updates in the text for clarification

R2 v1 2026-06-28T16:44:34.683Z