Atom Interferometer Gyroscope with Spin-Dependent Phase Shifts Induced by Light near a Tune-Out Wavelength
arXiv:1510.06241 · doi:10.1103/PhysRevLett.114.140404
Abstract
Tune-out wavelengths measured with an atom interferometer are sensitive to laboratory rotation rates because of the Sagnac effect, vector polarizability, and dispersion compensation. We observed shifts in measured tune-out wavelengths as large as 213 pm with a potassium atom beam interferometer, and we explore how these shifts can be used for an atom interferometer gyroscope.
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Cited by in corpus (8)
- Measurements of the Ground-State Polarizabilities of Cs, Rb, and K using Atom Interferometry
- Precision Measurement of the 87-Rb Tune-Out Wavelength in the Hyperfine Ground State F=1 at 790 nm
- Multiqubit matter-wave interferometry under decoherence and the Heisenberg scaling recovery
- Noisy quantum gyroscope
- Precise many-body calculations and hyperfine interaction effect on dynamic polarizabilities at the low-lying energy levels of Y
- Spin-sensitive atom mirror via spin-orbit interaction
- Measurement of the 87Rb D-line vector tune-out wavelength
- Experimental study of tune-out wavelengths for spin-dependent optical lattice in Rb Bose-Einstein condensation