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Mach-Zehnder atom interferometry with non-interacting trapped Bose Einstein condensates
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The coherent manipulation of a quantum wave is at the core of quantum sensing. For instance, atom interferometers require linear splitting and recombination processes to map the accumulated phase shift into a measurable population signal. Although Bose Einstein condensates (BECs) are the archetype of coherent matter waves, their manipulation between trapped spatial modes has been limited by the strong interparticle collisions. Here, we overcome this problem by using BECs with tunable interaction trapped in an innovative array of double-well potentials and exploiting quantum tunneling to realize linear beam splitting. We operate several Mach-Zehnder interferometers in parallel, canceling common-mode potential instabilities by a differential analysis, thus demonstrating a trapped-atom gradiometer. Furthermore, by applying a spin-echo protocol, we suppress additional decoherence sources and approach unprecedented coherence times of one second. Our interferometer will find applications in precision measurements of forces with a high spatial resolution and in linear manipulation of quantum entangled states for sensing with sub shot-noise sensitivity.
Forward citations
Cited by 3 Pith papers
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Large anomalous shifts of potassium-39 Feshbach resonances
Two 39K Feshbach resonances shift by up to 7.5 G in a 1063.9 nm optical trap because the associated Feshbach molecules have unexpectedly large dynamic polarizabilities, four to seven times the atomic sum.
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Continuously trapped matter-wave interferometry in magic Floquet-Bloch band structures
A trapped atom interferometer using Floquet-Bloch bands is made first-order insensitive to lattice depth noise at special 'magic' operating points.
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Metrology using atoms in an array of double-well potentials
Inter-well beam splitting of independent BECs in an array of double wells yields a quantum Fisher information of about M n^2 / 2, exceeding the standard quantum limit without prior spin squeezing.
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