A quantum sensor: simultaneous precision gravimetry and magnetic gradiometry with a Bose-Einstein condensate
arXiv:1603.01967 · doi:10.1103/PhysRevLett.117.138501
Abstract
A Bose-Einstein condensate is used as an atomic source for a high precision sensor. A atom F=1 spinor condensate of Rb is released into free fall for up to ms and probed with a Mach-Zehnder atom interferometer based on Bragg transitions. The Bragg interferometer simultaneously addresses the three magnetic states, , facilitating a simultaneous measurement of the acceleration due to gravity with an asymptotic precision of g/g and the magnetic field gradient to a precision pT/m.
References in corpus (7)
- Atom Interferometry tests of the isotropy of post-Newtonian gravity
- Limits to the sensitivity of a low noise compact atomic gravimeter
- Quantum Tests of the Einstein Equivalence Principle with the STE-QUEST Space Mission
- Precision atomic gravimeter based on Bragg diffraction
- A high-flux BEC source for mobile atom interferometers
- 3D Projection Sideband Cooling
- The Role of Source Coherence in Atom Interferometery
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