European Physical Journal C: Particles and Fields (Nov 2024)

Demonstration of magnetically silent optically pumped magnetometers for the TUCAN electric dipole moment experiment

  • Wolfgang Klassen,
  • Shomi Ahmed,
  • Kiera Pond Grehan,
  • Chris Hovde,
  • Kirk W. Madison,
  • Russell R. Mammei,
  • Jeffery W. Martin,
  • Mark McCrea,
  • Tahereh Mohammadi,
  • Takamasa Momose,
  • Patrick Opsahl,
  • David C. M. Ostapchuk

DOI
https://doi.org/10.1140/epjc/s10052-024-13544-5
Journal volume & issue
Vol. 84, no. 11
pp. 1 – 10

Abstract

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Abstract We report the performance of a magnetically silent optically pumped cesium magnetometer with a statistical sensitivity of 3.5 pT/ $$\sqrt{\textrm{Hz}}$$ Hz at 1 Hz and a stability of 90 fT over 150 s of measurement. Optical pumping with coherent, linearly-polarized, resonant light leads to a relatively long-lived polarized ground state of the cesium vapour contained in a measurement cell. The state precesses at its Larmor frequency in the magnetic field to be measured. Nonlinear magneto-optical rotation then leads to the rotation of the plane of polarization of a linearly polarized probe laser beam. The rotation angle is modulated at twice the Larmor frequency. A measurement of this frequency constitutes an absolute measurement of the magnetic field magnitude. Featuring purely optical operation, non-magnetic construction, low noise floor, and high stability, this sensor will be used for the upcoming TUCAN electric dipole moment experiment and other highly sensitive magnetic applications. Novel aspects of the system include commercial construction and the ability to operate up to 24 sensors on a single probe laser diode.