Rapidly scanning magnetic and optical dipole traps have been widely utilized to form time-averaged potentials for ultracold quantum gas experiments. Here we theoretically and experimentally characterize the dynamic properties of Bose-Einstein condensates in ring-shaped potentials that are formed by scanning an optical dipole beam in a circular trajectory. We find that unidirectional scanning leads to a nontrivial phase profile of the condensate that can be approximated analytically using the concept of phase imprinting. While the phase profile is not accessible through in-trap imaging, time-of-flight expansion manifests clear density signatures of an in-trap phase step in the condensate, coincident with the instantaneous position of the sca...
Cold atomic gases are the ultimate quantum sensors. Embedded in a matter-wave interferometer, they p...
Atom chips are a great tool for creation of low dimensional magnetic trapping geometries via micro-s...
Cold atomic gases are the ultimate quantum sensors. Embedded in a matter-wave interferometer, they p...
Interferometric measurements with matter waves are established techniques for sensitive gravimetry, ...
Interferometric measurements with matter waves are established techniques for sensitive gravimetry, ...
We demonstrate a spatially resolved autocorrelation measurement with a Bose-Einstein condensate and ...
We demonstrate a spatially resolved autocorrelation measurement with a Bose-Einstein condensate and ...
We propose a method of atom interferometry using a spinor Bose-Einstein condensate with a timevaryin...
This paper reports the results of a theoretical and experimental study of how the initial circulatio...
This paper reports the results of a theoretical and experimental study of how the initial circulatio...
This paper reports the results of a theoretical and experimental study of how the initial circulatio...
This thesis presents work on Bose-Einstein condensates in non-harmonic optical potentials. First, a ...
Since the first Bose-Einstein Condensate (BEC) was demonstrated in a dilute atomic gas [1], rotating...
Atom chips are a great tool for creation of low dimensional magnetic trapping geometries via micro-s...
We study the mutual interaction of a Bose-Einstein condensed gas with a single mode of a high-finess...
Cold atomic gases are the ultimate quantum sensors. Embedded in a matter-wave interferometer, they p...
Atom chips are a great tool for creation of low dimensional magnetic trapping geometries via micro-s...
Cold atomic gases are the ultimate quantum sensors. Embedded in a matter-wave interferometer, they p...
Interferometric measurements with matter waves are established techniques for sensitive gravimetry, ...
Interferometric measurements with matter waves are established techniques for sensitive gravimetry, ...
We demonstrate a spatially resolved autocorrelation measurement with a Bose-Einstein condensate and ...
We demonstrate a spatially resolved autocorrelation measurement with a Bose-Einstein condensate and ...
We propose a method of atom interferometry using a spinor Bose-Einstein condensate with a timevaryin...
This paper reports the results of a theoretical and experimental study of how the initial circulatio...
This paper reports the results of a theoretical and experimental study of how the initial circulatio...
This paper reports the results of a theoretical and experimental study of how the initial circulatio...
This thesis presents work on Bose-Einstein condensates in non-harmonic optical potentials. First, a ...
Since the first Bose-Einstein Condensate (BEC) was demonstrated in a dilute atomic gas [1], rotating...
Atom chips are a great tool for creation of low dimensional magnetic trapping geometries via micro-s...
We study the mutual interaction of a Bose-Einstein condensed gas with a single mode of a high-finess...
Cold atomic gases are the ultimate quantum sensors. Embedded in a matter-wave interferometer, they p...
Atom chips are a great tool for creation of low dimensional magnetic trapping geometries via micro-s...
Cold atomic gases are the ultimate quantum sensors. Embedded in a matter-wave interferometer, they p...