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Continuous field tracking with machine learning and steady state spin squeezing

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arxiv 2402.00536 v1 pith:PX5OMFOT submitted 2024-02-01 quant-ph

classification quant-ph
keywords quantumspincontinuousentanglementsqueezingstatesteadyenhancement
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abstract

Entanglement plays a crucial role in proposals for quantum metrology, yet demonstrating quantum enhancement in sensing with sustained spin entanglement remains a challenging endeavor. Here, we combine optical pumping and continuous quantum nondemolition measurements to achieve a sustained spin squeezed state with $\bm{4 \times 10^{10}}$ hot atoms. A metrologically relevant steady state squeezing of $\bm{-3.23 \pm 0.24}$ dB using prediction and retrodiction is maintained for about one day. We employ the system to track different types of continuous time-fluctuating magnetic fields, where we construct deep learning models to decode the measurement records from the optical signals. Quantum enhancement due to the steady spin squeezing is verified in our atomic magnetometer. These results represent important progress towards applying long-lived quantum entanglement resources in realistic settings.

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  1. Cavity-enabled real-time observation of individual atomic collisions

    quant-ph 2024-11 accept novelty 6.0 of 10

    Cavity-based nondestructive atom counting resolves 0-3 atoms in optical tweezers at 100 µs resolution, enabling real-time observation of atomic collisions and adaptive single-atom loading.

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