Interacting ultracold atomic quantum gases provide an ideal test bed to study strongly correlated quantum matter. The interactions between atoms in such an ultracold quantum gas are typically short-ranged and well described by an effective contact potential. Introducing longer-range interactions promises the realization of novel quantum phases which are absent in systems with only short-range interactions. Trapped atoms, resonantly laser-coupled to highly excited, strongly interacting Rydberg states have been proposed as a versatile platform to realize such long-range interacting quantum matter. In a first experiment presented in this thesis, we combined the single-atom-sensitive local preparation and detection enabled by a quantum gas mic...
This thesis describes Rydberg spectroscopy and dressing experiments in an ultracold strontium gas. T...
New phenomena have been observed by exciting ultracold ground-state atoms to Rydberg states. Startin...
Rydberg atoms are the “giants” in the world of atomic physics. Their highly excited valence electron...
This thesis investigates new phenomena that arise when light is strongly coupled to an interacting a...
The ability to control and tune interactions in ultracold atomic gases has paved the way for the rea...
The ability to control and tune interactions in ultracold atomic gases has paved the way for the rea...
Recent achievements in ultra-cold experiments have made quantum simulation of interacting many-body ...
Recent achievements in ultra-cold experiments have made quantum simulation of interacting many-body ...
Ultracold atoms in optical lattices are ideal to study fundamentally new quantum many-body systems(1...
The ability to control and tune interactions in ultracold atomic gases has paved the way for the rea...
Ultracold atoms in optical lattices are ideal to study fundamentally new quantum many-body systems(1...
This thesis describes studies on a Rydberg-dressed ultracold atom system as a versatile platform for...
This thesis experimentally explores the application of strongly interacting states of Rydberg atoms ...
New phenomena have been observed by exciting ultracold ground-state atoms to Rydberg states. Startin...
We propose a Rydberg molecule dressing scheme to create strong and long-ranged interactions at selec...
This thesis describes Rydberg spectroscopy and dressing experiments in an ultracold strontium gas. T...
New phenomena have been observed by exciting ultracold ground-state atoms to Rydberg states. Startin...
Rydberg atoms are the “giants” in the world of atomic physics. Their highly excited valence electron...
This thesis investigates new phenomena that arise when light is strongly coupled to an interacting a...
The ability to control and tune interactions in ultracold atomic gases has paved the way for the rea...
The ability to control and tune interactions in ultracold atomic gases has paved the way for the rea...
Recent achievements in ultra-cold experiments have made quantum simulation of interacting many-body ...
Recent achievements in ultra-cold experiments have made quantum simulation of interacting many-body ...
Ultracold atoms in optical lattices are ideal to study fundamentally new quantum many-body systems(1...
The ability to control and tune interactions in ultracold atomic gases has paved the way for the rea...
Ultracold atoms in optical lattices are ideal to study fundamentally new quantum many-body systems(1...
This thesis describes studies on a Rydberg-dressed ultracold atom system as a versatile platform for...
This thesis experimentally explores the application of strongly interacting states of Rydberg atoms ...
New phenomena have been observed by exciting ultracold ground-state atoms to Rydberg states. Startin...
We propose a Rydberg molecule dressing scheme to create strong and long-ranged interactions at selec...
This thesis describes Rydberg spectroscopy and dressing experiments in an ultracold strontium gas. T...
New phenomena have been observed by exciting ultracold ground-state atoms to Rydberg states. Startin...
Rydberg atoms are the “giants” in the world of atomic physics. Their highly excited valence electron...