English

Accurate vector optically pumped magnetometer with microwave-driven Rabi frequency measurements

Atomic Physics 2025-02-28 v2

Abstract

Robust calibration of vector optically pumped magnetometers (OPMs) is a nontrivial task, but increasingly important for applications requiring high-accuracy such as magnetic navigation, geophysics research, and space exploration. Here, we showcase a vector OPM that utilizes Rabi oscillations driven between the hyperfine manifolds of 87^{87}Rb to measure the direction of a DC magnetic field against the polarization ellipse structure of a microwave field. By relying solely on atomic measurements -- free-induction decay (FID) signals and Rabi measurements across multiple atomic transitions -- this sensor can detect drift in the microwave vector reference and compensate for systematic shifts caused by off-resonant driving, nonlinear Zeeman (NLZ) effects, and buffer gas collisions. To facilitate dead-zone-free operation, we also introduce a novel Rabi measurement that utilizes dressed-state resonances that appear during simultaneous Larmor precession and Rabi driving (SPaR). These measurements, performed within a microfabricated vapor cell platform, achieve an average vector accuracy of 0.46 mrad and vector sensitivities down to 11 μ\murad/Hz/\sqrt{\text{Hz}} for geomagnetic field strengths near 50 μ\muT. This performance surpasses the challenging 1-degree (17 mrad) accuracy threshold of several contemporary OPM methods utilizing atomic vapors with an electromagnetic vector reference.

Keywords

Cite

@article{arxiv.2409.09885,
  title  = {Accurate vector optically pumped magnetometer with microwave-driven Rabi frequency measurements},
  author = {Christopher Kiehl and Thanmay S. Menon and Svenja Knappe and Tobias Thiele and Cindy A. Regal},
  journal= {arXiv preprint arXiv:2409.09885},
  year   = {2025}
}

Comments

18 pages, 6 figures + supplementary 16 pages, 14 figures

R2 v1 2026-06-28T18:45:26.510Z