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Scalable Spin Squeezing from Finite Temperature Easy-plane Magnetism

Quantum Physics 2024-11-19 v2 Quantum Gases Strongly Correlated Electrons Atomic Physics

Abstract

Spin squeezing is a form of entanglement that reshapes the quantum projection noise to improve measurement precision. Here, we provide numerical and analytic evidence for the following conjecture: any Hamiltonian exhibiting finite temperature, easy-plane ferromagnetism can be used to generate scalable spin squeezing, thereby enabling quantum-enhanced sensing. Our conjecture is guided by a connection between the quantum Fisher information of pure states and the spontaneous breaking of a continuous symmetry. We demonstrate that spin-squeezing exhibits a phase diagram with a sharp transition between scalable squeezing and non-squeezing. This transition coincides with the equilibrium phase boundary for XY order at a finite temperature. In the scalable squeezing phase, we predict a sensitivity scaling that lies in between the standard quantum limit and the scaling achieved in all-to-all coupled one-axis twisting models. A corollary of our conjecture is that short-ranged versions of two-axis twisting cannot yield scalable metrological gain. Our results provide insights into the landscape of Hamiltonians that can be used to generate metrologically useful quantum states.

Keywords

Cite

@article{arxiv.2301.09636,
  title  = {Scalable Spin Squeezing from Finite Temperature Easy-plane Magnetism},
  author = {Maxwell Block and Bingtian Ye and Brenden Roberts and Sabrina Chern and Weijie Wu and Zilin Wang and Lode Pollet and Emily J. Davis and Bertrand I. Halperin and Norman Y. Yao},
  journal= {arXiv preprint arXiv:2301.09636},
  year   = {2024}
}

Comments

6 pages, 3 figures + 24 pages, 13 figures

R2 v1 2026-06-28T08:18:05.737Z