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Optically pumped magnetometers based on symmetric frequency-detuning modulated light

  • Yifan Yan
  • , Zehua Liu
  • , Yuesong Wu
  • , Xiaoshu Ding
  • , Min Xiang
  • , Yaxiang Wang*
  • , Jixi Lu*
  • *Corresponding author for this work
  • Beihang University
  • Hefei National Laboratory
  • National Institute of Extremely-Weak Magnetic Field Infrastructure

Research output: Contribution to journalArticlepeer-review

Abstract

The elliptically polarized optically pumped magnetometer (OPM) employs a single-beam of off-resonant elliptically polarized light to measure magnetic fields by detecting optical rotation angles, offering advantages of compactness and high sensitivity. However, the used off-resonant light introduces the AC-Stark shift. It perturbs the atomic Zeeman levels and can be comparable to a non-uniform fictitious magnetic field, degrading the response and introducing relaxation. In this study, we develop symmetric frequency-detuning modulated light to pump OPMs, which achieves rapid switching between symmetric red and blue detuning. Driven by it, the AC-Stark field rapidly reverses its direction and thus the average effect of the three-dimensional AC-Stark field is nullified. Meanwhile, the optical rotation angle is modulated optically, enhancing the response signal in the detection process. Finally, under the frequency-detuning of about 90 GHz, an average AC-Stark field of approximately 9.5 nT was unsensitized and a 70 % improvement in sensitivity was achieved in elliptically polarized OPMs. Our approach facilitates the applications of highly sensitive OPMs in biomagnetism measurements and frontier physics research.

Original languageEnglish
Article number112833
JournalOptics and Laser Technology
Volume187
DOIs
StatePublished - Sep 2025

Keywords

  • AC-Stark shift
  • Frequency modulation
  • Optically pumped magnetometers
  • Spin-exchange relaxation-free

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