arXiv:2603.28421quant-phcs.AI2026-03

用强化学习让原子自旋的非线性效应变测量优势

Learning Unified Control of Intrinsic Nonlinear Spin Dynamics in Atomic Qudits for Magnetometry

  • 用强化学习自动找控制策略,统一处理复杂非线性自旋演化
  • 在镝-161原子中实现超4分贝稳定自旋压缩,突破标准量子极限3分贝
  • 适合做高精度磁力计的实验团队,尤其关注非线性动力学的优化

在低场原子磁力计中,多能级原子的非线性塞曼效应既是生成内部自旋压缩的资源,也是导致测量轴旋转和畸变的限制因素。该效应随时间变化,使控制更复杂。本文展示,通过强化学习,可将这种内在非线性动态转化为持续的测计量优势。仅使用可实验测量的低阶自旋矩,训练后的智能体找到适用于此类非线性传感动力学的统一控制策略。以^{161}Dy的f=21/2态为例,所学策略快速制备强自旋压缩态,并在连续非线性塞曼演化下维持超过4 dB的固定轴自旋压缩。考虑态制备开销后,单原子磁场灵敏度达13.9 pT/√Hz,约比标准量子极限优3 dB。结果证明,基于学习的控制是将多能级原子传感器中不可避免的非线性动力学转化为实际测计量优势的可行路径。

原文摘要 · Abstract (English)

Generating and preserving metrologically useful quantum states is a central challenge in quantum-enhanced metrology. In low-field atomic magnetometry with multilevel atoms, the nonlinear Zeeman (NLZ) effect is both a resource and a limitation. It can generate internal spin squeezing within a single atomic qudit, but under fixed readout it also rotates and distorts the measurement-relevant quadrature, limiting the usable metrological gain. The problem is further complicated by the time dependence of both the squeezing axis and the nonlinear evolution itself. Here we show that reinforcement learning can transform NLZ dynamics from a source of readout degradation into a sustained metrological resource. Using only experimentally accessible low-order spin moments, a trained agent identifies a unified control policy for this class of intrinsically nonlinear sensing dynamics. We illustrate the approach in the $f=21/2$ manifold of $^{161}\mathrm{Dy}$, where the learned policy rapidly prepares strongly squeezed internal states and stabilizes more than $4\,\mathrm{dB}$ of fixed-axis spin squeezing under continuous NLZ evolution. Including state-preparation overhead, the learned protocol yields a single-atom magnetic-field sensitivity of $13.9\,\mathrm{pT}/\sqrt{\mathrm{Hz}}$, approximately $3\,\mathrm{dB}$ beyond the standard quantum limit. Our results establish learning-based control as an experimentally feasible route for converting unavoidable intrinsic nonlinear dynamics in multilevel atomic sensors into operational metrological advantage.

量子传感强化学习自旋压缩磁力计

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