A BEC Based Precision Gravimeter and Magnetic Gradiometer: Design and Implementation
Abstract
A precision inertial sensor based on the interference of matter
waves has been designed and implemented. The apparatus is capable
of producing both cold thermal and ultracold Bose-Einstein
condensate (BEC) atomic ensembles as the inertial test mass. BECs
of up to 5x10^6 Rubidium 87 atoms with an effective temperature
of 50nK are produced every 13 seconds using a combination of two
and three dimensional magneto-optical traps (2D and 3D MOT) and
evaporative cooling in a hybrid magnetic-quadrupole and crossed
optical dipole trap. The atomic cloud is then propagated through
a vertically oriented Mach-Zehnder interferometer utilizing Bragg
diffraction beam splitters. An 2.6m drop tube allows for up to
750ms of free fall and interferometer times of up to 250ms. The
drop has four regions of imaging corresponding to 0, 25, 220,
530, and 750ms of expansion. Standard absorption imaging is used
for the upper two imaging regions and frequency modulation
imaging (FMI) is used for the lower regions. FMI exhibits near
atom-shot noise limited signal-to-noise of 948 on a 1x10^6 atom
cloud. The inertial reference is provided by the Bragg beam
retro-reflector which is suspended via a geometric anti-spring
passive vibration isolation system providing 65 dB of isolation
at 70 Hz. Prior to the first interferometer pulse the ensemble is
placed into a spin superposition of the |F=1> ground state
manifold using horizontal co-propagating Raman beams. The three
internal spin states remain orthogonal throughout the
interferometer sequence resulting in three simultaneous
interferometer with separable magnetic gradient and gravitational
acceleration signals.
The effects of meanfield energy on the interferometric phase
uncertainty is explored under current trap conditions. It is
found that 30 ms of free expansion prior to the first beam
splitter decreases the internal energy such that the expected
meanfield phase noise is below 1mrad. No significant decrease in
the interferometer contrast is observed for all available T,
whereas a thermal test mass interferometer of equivalent
longitudinal temperature produces no interference at
interferometer times > 100ms.
A direct comparison of test mass spatial coherence length in an
optically transversely confined interferometer is investigated.
The visibility and contrast of a BEC and three thermal sources
with varying spatial coherence are compared as a function of
interferometer time. At short times, the fringe visibility of a
BEC source approaches 100%, nearly independent of p pulse
efficiency, while thermal sources have fringe visibilities
limited to the p pulse efficiency. More importantly for precision
measurement systems, the BEC source maintains interference at
interferometer times significantly beyond that of the thermal
source.
A BEC test mass is used for the simultaneous precision
measurement of gravity and magnetic field gradients. An 8 hour
data run of a 130ms interferometer shows good agreement between
the interferometer output and a theoretical model of the solid
earth tides. The residual of the theoretical model and the
experimental data show a 1000 run precision of dg/g = 1.45x10^9
corresponding to a phase noise of 3.8mrad. The integrated phase
noise of the apparatus shows a sensitivity to magnetic field
gradients of 120pT/m. By varying the central spatial position of
a 40ms interferometer the magnetic field gradient along a portion
of the drop tube is measured.
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