arXiv · 1807.03619
Self-calibrating vector atomic magnetometry through microwave polarization reconstruction
Abstract
Atomic magnetometry is one of the most sensitive ways to measure magnetic fields. We present a method for converting a naturally scalar atomic magnetometer into a vector magnetometer by exploiting the polarization dependence of hyperfine transitions in rubidium atoms. First, we fully determine the polarization ellipse of an applied microwave field using a self-calibrating method, i.e. a method in which the light-atom interaction provides everything required to know the field in an orthogonal laboratory frame. We then measure the direction of an applied static field using the polarization ellipse as a three-dimensional reference defined by Maxwell's equations. Although demonstrated with trapped atoms, this technique could be applied to atomic vapors, or a variety of atom-like systems.
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Tobias Thiele, Yiheng Lin, Mark O. Brown, Cindy A. Regal. 2018-07-10. Self-calibrating vector atomic magnetometry through microwave polarization reconstruction. https://doi.org/10.1103/physrevlett.121.153202
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