Improving the phase response of an atom interferometer by means of temporal pulse shaping
arXiv:1712.08110 · doi:10.1088/1367-2630/aaa37c
Abstract
We study theoretically and experimentally the influence of temporally shaping the light pulses in an atom interferometer, with a focus on the phase response of the interferometer. We show that smooth light pulse shapes allow rejecting high frequency phase fluctuations (above the Rabi frequency) and thus relax the requirements on the phase noise or frequency noise of the interrogation lasers driving the interferometer. The light pulse shape is also shown to modify the scale factor of the interferometer, which has to be taken into account in the evaluation of its accuracy budget. We discuss the trade-offs to operate when choosing a particular pulse shape, by taking into account phase noise rejection, velocity selectivity, and applicability to large momentum transfer atom interferometry.
accepted in New Journal of Physics
References in corpus (17)
- Precision Measurement of the Newtonian Gravitational Constant Using Cold Atoms
- New determination of the fine structure constant and test of the quantum electrodynamics
- 6-axis inertial sensor using cold-atom interferometry
- Quantum Test of the Universality of Free Fall
- Test of Equivalence Principle at Level by a Dual-species Double-diffraction Raman Atom Interferometer
- Limits to the sensitivity of a low noise compact atomic gravimeter
- A transportable optical lattice clock with uncertainty
- Dual Matter-Wave Inertial Sensors in Weightlessness
- Gravitational Wave Detection with Atom Interferometry
- An Atomic Gravitational Wave Interferometric Sensor in Low Earth Orbit (AGIS-LEO)
- Measurement of the Gravity-Field Curvature by Atom Interferometry
- Atom-wave diffraction between the Raman-Nath and the Bragg regime: Effective Rabi frequency, losses, and phase shifts
- Operating an atom interferometer beyond its linear range
- Atom interferometry in an optical cavity
- Composite pulses for interferometry in a thermal cold atom cloud
- Influence of lasers propagation delay on the sensitivity of atom interferometers
- Stability enhancement by joint phase measurements in a single cold atomic fountain