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Multiaxis Atom Interferometry with a Single Diode Laser and a Pyramidal Magneto-Optical Trap

Bulletin of the American Physical Society(2018)

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摘要
Atom interferometry has become one of the most powerful technologies for precision measurements. To develop simple, precise, and versatile atom interferometers for inertial sensing, we demonstrate an atom interferometer measuring acceleration, rotation, and inclination by pointing Raman beams toward individual faces of a pyramidal mirror. Only a single-diode laser is used for all functions, including atom trapping, interferometry, and detection. Efficient Doppler-sensitive Raman transitions are achieved without velocity selecting the atom sample, and with zero differential AC Stark shift between the cesium hyperfine ground states, increasing signal-to-noise and suppressing systematic effects. We measure gravity along two axes (vertical and 45 degrees to the vertical), rotation, and inclination with sensitivities of 6 mu m/s(2)/root Hz, 300 mu rad/s/root Hz, and 4 mu rad/root Hz, respectively. This work paves the way toward deployable multiaxis atom interferometers for geodesy, geology, or inertial navigation. (C) 2017 Optical Society of America
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Atomic Magnetometer
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