We demonstrate light-pulse atom interferometry with large-momentum-transfer atom optics based on stimulated Raman transitions and frequency-swept adiabatic rapid passage. Our atom optics have produced momentum splittings of up to 30 photon recoil momenta in an acceleration-sensitive interferometer for laser cooled atoms. We experimentally verify the enhancement of phase shift per unit acceleration and characterize interferometer contrast loss. By forgoing evaporative cooling and velocity selection, this method lowers the atom shot-noise-limited measurement uncertainty and enables large-area atom interferometry at higher data rates.Charles Stark Draper Laboratory (Fellowship
We present a method for robust timekeeping in which alkali-metal atoms are interrogated in a Ramsey ...
International audienceIIn this paper we demonstrate a new scheme for Raman transitions which realize...
International audienceIIn this paper we demonstrate a new scheme for Raman transitions which realize...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Aeronautics and Astronautics, Febru...
We present designs for the augmentation “mirror” pulses of large-momentum-transfer atom interferomet...
We demonstrate a novel scheme for Raman-pulse and Bragg-pulse atom interferometry based on the $5\ma...
We demonstrate a novel scheme for Raman-pulse and Bragg-pulse atom interferometry based on the $5\ma...
We present the theoretical design and experimental implementation of mirror and beamsplitter pulses ...
We present an elegant application of matter-wave interferometry to the velocimetry of cold atoms whe...
We demonstrate a standing wave light pulse sequence that places atoms into a superposition of displa...
The scientific objectives for this proposal were: (1) development of a rugged laser cooled source of...
Interferometric measurement of an atom’s velocity allows, by tailoring the impulse imparted by the m...
Atom Interferometry is a technique offering unparalleled sensitivity to a wide range of applications...
We demonstrate a light-pulse atom interferometer based on the diffraction of free-falling atoms by a...
International audienceAtom interferometry using stimulated Raman transitions in a retroreflected con...
We present a method for robust timekeeping in which alkali-metal atoms are interrogated in a Ramsey ...
International audienceIIn this paper we demonstrate a new scheme for Raman transitions which realize...
International audienceIIn this paper we demonstrate a new scheme for Raman transitions which realize...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Aeronautics and Astronautics, Febru...
We present designs for the augmentation “mirror” pulses of large-momentum-transfer atom interferomet...
We demonstrate a novel scheme for Raman-pulse and Bragg-pulse atom interferometry based on the $5\ma...
We demonstrate a novel scheme for Raman-pulse and Bragg-pulse atom interferometry based on the $5\ma...
We present the theoretical design and experimental implementation of mirror and beamsplitter pulses ...
We present an elegant application of matter-wave interferometry to the velocimetry of cold atoms whe...
We demonstrate a standing wave light pulse sequence that places atoms into a superposition of displa...
The scientific objectives for this proposal were: (1) development of a rugged laser cooled source of...
Interferometric measurement of an atom’s velocity allows, by tailoring the impulse imparted by the m...
Atom Interferometry is a technique offering unparalleled sensitivity to a wide range of applications...
We demonstrate a light-pulse atom interferometer based on the diffraction of free-falling atoms by a...
International audienceAtom interferometry using stimulated Raman transitions in a retroreflected con...
We present a method for robust timekeeping in which alkali-metal atoms are interrogated in a Ramsey ...
International audienceIIn this paper we demonstrate a new scheme for Raman transitions which realize...
International audienceIIn this paper we demonstrate a new scheme for Raman transitions which realize...