English

Preparing spin-squeezed states in Rydberg atom arrays via quantum optimal control

Quantum Physics 2025-12-01 v3

Abstract

We present a quantum optimal control protocol to generate highly spin-squeezed states in Rydberg atom arrays coupled via Ising-type van der Waals interactions. Using gradient-based optimization techniques, we construct time-dependent pulse sequences that steer an initial product state toward highly entangled, spin-squeezed states with predefined magnetization and squeezing axes. We focus on the Wineland parameter ξW2\xi_W^2 to measure spin squeezing, and our approach achieves near-optimal spin squeezing in one-dimensional ring arrays of up to N=8N=8 spins, significantly outperforming conventional quench dynamics for all system sizes studied. Remarkably, optimized pulse sequences can be directly scaled to larger arrays without additional optimization, achieving a squeezing parameter as low as ξW2=0.227\xi_W^2 = 0.227 in systems containing N=50N=50 spins. This work demonstrates the potential of quantum optimal control methods for preparing highly spin-squeezed states, opening pathways to enhanced quantum metrology.

Keywords

Cite

@article{arxiv.2507.07875,
  title  = {Preparing spin-squeezed states in Rydberg atom arrays via quantum optimal control},
  author = {Edison S. Carrera and Harold Erbin and Grégoire Misguich},
  journal= {arXiv preprint arXiv:2507.07875},
  year   = {2025}
}

Comments

13 pages, 11 figures. v3: minor changes, published version

R2 v1 2026-07-01T03:55:02.528Z