Magnetic tensor gradiometry using Ramsey interferometry of spinor condensates
arXiv:1408.0944 · doi:10.1103/PhysRevA.92.053604
Abstract
We have realized a magnetic tensor gradiometer by interferometrically measuring the relative phase between two spatially separated Bose-Einstein condensates (BECs). We perform simultaneous Ramsey interferometry of the proximate Rb spin-1 condensates in freefall and infer their relative Larmor phase -- and thus the differential magnetic field strength -- with a common-mode phase noise suppression exceeding . By appropriately biasing the magnetic field and separating the BECs along orthogonal directions, we measure the magnetic field gradient tensor of ambient and applied magnetic fields with a nominal precision of and a sensor volume of . We predict a spin-projection noise limited magnetic energy resolution of order for typical Zeeman coherence times of trapped condensates with this scheme, even with the low measurement duty cycle inherent to BEC experiments.
7 pages, 4 figures
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