Bragg gravity-gradiometer using the 1S0-3P1 intercombination transition of 88Sr

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Abstract

We present a gradiometer based on matter-wave interference of alkaline-earth-metal atoms, namely 88Sr. The coherent manipulation of the atomic external degrees of freedom is obtained by large-momentum-transfer Bragg diffraction, driven by laser fields detuned away from the narrow 1S0-3P1 intercombination transition. We use a well-controlled artificial gradient, realized by changing the relative frequencies of the Bragg pulses during the interferometer sequence, in order to characterize the sensitivity of the gradiometer. The sensitivity reaches 1.5 × 10-5 s-2 for an interferometer time of 20 ms, limited only by geometrical constraints. We observed extremely low sensitivity of the gradiometric phase to magnetic field gradients, approaching a value 104 times lower than the sensitivity of alkali-atom based gradiometers, limited by the interferometer sensitivity. An efficient double-launch technique employing accelerated red vertical lattices from a single magneto-optical trap cloud is also demonstrated. These results highlight strontium as an ideal candidate for precision measurements of gravity gradients, with potential application in future precision tests of fundamental physics.

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Del Aguila, R. P., Mazzoni, T., Hu, L., Salvi, L., Tino, G. M., & Poli, N. (2018). Bragg gravity-gradiometer using the 1S0-3P1 intercombination transition of 88Sr. New Journal of Physics, 20(4). https://doi.org/10.1088/1367-2630/aab088

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