English

In situ magnetic-field stabilization for quantum-gas experiments

Atomic Physics 2026-03-10 v1 Applied Physics

Abstract

We demonstrate a minimally-destructive in situ technique for measuring and stabilizing slowly-drifting magnetic fields in ultracold-atom experiments. While conventional magnetic-field sensors such as Hall, giant magnetoresistive, or fluxgate-based devices are broadly used, their accuracy, precision and dynamic range can be limited. In addition, these sensors are typically positioned at least several centimeters away from the in-vacuum atomic system, as their operation creates perturbing magnetic fields, and their placement is limited by geometric constraints imposed by the vacuum system. We overcome these issues by using the atomic system itself as a built-in magnetometer. To that end, we employ a pair of weak measurements to determine the Zeeman splitting -- and thereby the magnetic field -- of a magnetically sensitive atomic transition. We provide closed-form expressions quantifying the trade-offs between measurement noise, dynamic range, and atom loss. This procedure is demonstrated with ultracold Rb-87, weakly measured using partial-transfer absorption imaging. We then incorporate a Kalman filter to stabilize the magnetic field; this eliminated long-term drift in the ambient field (as high as ~70 nT/hr) in exchange for a modest increase in shot-to-shot variability from 1.8(2) nT to 2.0(2) nT.

Keywords

Cite

@article{arxiv.2603.06988,
  title  = {In situ magnetic-field stabilization for quantum-gas experiments},
  author = {E. Gvozdiovas and A. Valdés-Curiel and Q. -Y. Liang and E. D. Mercado-Gutierrez and A. M. Piñeiro and J. Tao and D. Trypogeorgos and M. Zhao and I. B. Spielman},
  journal= {arXiv preprint arXiv:2603.06988},
  year   = {2026}
}

Comments

See Ancillary files for experimental data and a reference for the feedback-locking loop

R2 v1 2026-07-01T11:08:10.467Z