Progress in understanding quantum systems has been driven by the exploration of the geometry, topology, and dimensionality of ultracold atomic systems. The NASA Cold Atom Laboratory (CAL) aboard the International Space Station has enabled the study of ultracold atomic bubbles, a terrestrially-inaccessible topology. Proof-of-principle bubble experiments have been performed on CAL with an radiofrequency-dressing technique; an alternate technique (dual-species interaction-driven bubbles) has also been proposed. Both techniques can drive discovery in the next decade of fundamental physics research in microgravity
We consider the effect of inhomogeneities on the rate of false vacuum decay. Modelling the inhomogen...
AbstractWith the announcement of the recent successful production of a Bose-Einstein condensate (BEC...
Spacetime is composed of a fluctuating arrangement of bubbles or loops called spacetime foam, or qua...
Progress in understanding quantum systems has been driven by the exploration of the geometry, topolo...
Progress in understanding quantum systems has been driven by the exploration of the geometry, topolo...
Substantial leaps in the understanding of quantum systems have been driven by exploring geometry, to...
Extending the understanding of Bose-Einstein condensate (BEC) physics to new geometries and topologi...
Extending the understanding of Bose–Einstein condensate (BEC) physics to new geometries and topologi...
Existing space-based cold atom experiments have demonstrated the utility of microgravity for improve...
Ultracold quantum gases are ideal sources for high-precision space-borne sensing as proposed for Ear...
Microgravity eases several constraints limiting experiments with ultracold and condensed atoms on gr...
Quantum theory is incredibly successful, explaining the microscopic world with great accuracy, from ...
Quantum technologies are on the rise to change our daily life and thinking triggered by enormous adv...
Ultracold quantum gases confined in three-dimensional bubble traps are promising tools for exploring...
The existence of bubbles in the nanoscale is an object of debates and disputes in recent years. New...
We consider the effect of inhomogeneities on the rate of false vacuum decay. Modelling the inhomogen...
AbstractWith the announcement of the recent successful production of a Bose-Einstein condensate (BEC...
Spacetime is composed of a fluctuating arrangement of bubbles or loops called spacetime foam, or qua...
Progress in understanding quantum systems has been driven by the exploration of the geometry, topolo...
Progress in understanding quantum systems has been driven by the exploration of the geometry, topolo...
Substantial leaps in the understanding of quantum systems have been driven by exploring geometry, to...
Extending the understanding of Bose-Einstein condensate (BEC) physics to new geometries and topologi...
Extending the understanding of Bose–Einstein condensate (BEC) physics to new geometries and topologi...
Existing space-based cold atom experiments have demonstrated the utility of microgravity for improve...
Ultracold quantum gases are ideal sources for high-precision space-borne sensing as proposed for Ear...
Microgravity eases several constraints limiting experiments with ultracold and condensed atoms on gr...
Quantum theory is incredibly successful, explaining the microscopic world with great accuracy, from ...
Quantum technologies are on the rise to change our daily life and thinking triggered by enormous adv...
Ultracold quantum gases confined in three-dimensional bubble traps are promising tools for exploring...
The existence of bubbles in the nanoscale is an object of debates and disputes in recent years. New...
We consider the effect of inhomogeneities on the rate of false vacuum decay. Modelling the inhomogen...
AbstractWith the announcement of the recent successful production of a Bose-Einstein condensate (BEC...
Spacetime is composed of a fluctuating arrangement of bubbles or loops called spacetime foam, or qua...