English

Scalable spin-nematic squeezing in multi-level dipole-interacting Rydberg atom arrays

Quantum Physics 2026-05-04 v1 Quantum Gases

Abstract

We study the generation of metrologically useful entanglement in a three-level (spin-1) system naturally realized in arrays of dipole-interacting Rydberg atoms confined in optical tweezers. In the spin-quadrupolar operator basis, the interaction Hamiltonian decomposes into effective SU(2) subspaces, within which quench dynamics from product initial states generate scalable spin-nematic squeezing. For symmetric interactions, we identify a mapping to effective one-axis twisting within bright and dark manifolds and demonstrate that the squeezing parameter scales as ξ2N2/3\xi^{2}\propto N^{-2/3} (ξ2N0.5\xi^{2}\propto N^{-0.5}) with system size for all-to-all (two-dimensional dipolar) couplings. In both cases the quantum Fisher information reaches FQN2F_Q\propto N^{2}. For antisymmetric interactions supplemented by a microwave drive we find a distinct two-axis countertwisting mechanism. This results in squeezing ξ2N0.7\xi^{2}\propto N^{-0.7} for all-to-all interactions and moderate squeezing for dipolar interactions in 2D. Our results constitute a first theoretical step beyond the well-studied qubit setting toward scalable entanglement generation in qudit systems with dipolar interactions, directly relevant to current Rydberg tweezer experiments.

Keywords

Cite

@article{arxiv.2605.00096,
  title  = {Scalable spin-nematic squeezing in multi-level dipole-interacting Rydberg atom arrays},
  author = {Sakshi Bahamnia and Thomas Bilitewski},
  journal= {arXiv preprint arXiv:2605.00096},
  year   = {2026}
}

Comments

5 pages (main) + 2 pages SI + 5 figures (main) + 2 Figures (SI): Comments Welcome

R2 v1 2026-07-01T12:44:19.377Z