Correlation functions play an important role for the theoretical and experimental characterization of many-body systems. In solid-state systems, they are usually determined through scattering experiments, whereas in cold gases systems, time-of-flight, and in situ absorption imaging are the standard observation techniques. However, none of these methods allow the in situ detection of spatially resolved correlation functions at the single-particle level. Here, we give a more detailed account of recent advances in the detection of correlation functions using in situ fluorescence imaging of ultracold bosonic atoms in an optical lattice. This method yields single-site- and single-atom-resolved images of the lattice gas in a single experimental r...
We present here the first measurement of the third-order spatial correlation function for atoms, mad...
At present, great effort is spent on the experimental realization of gauge fields for quantum many-b...
We demonstrate that ultracold interacting bosonic atoms in an optical lattice with large on-site pop...
Correlation functions play an important role for the theoretical and experimental characterization o...
Correlation functions play an important role for the theoretical and experimental characterization o...
The detection of correlation and response functions plays a crucial role in the experimental charac...
We propose to utilize density-density correlations in the image of an expanding gas cloud to probe c...
In the present paper, we investigate a system of strongly interacting bosons confined in two-dimensi...
I present experiments with ultracold atoms which demonstrate a novel avenue to study strongly correl...
We propose a versatile experimental probe for cold atomic gases analogous to the scanning tunneling ...
The reliable detection of single quantum particles has revolutionized the field of quantum optics an...
International audienceStrongly interacting finite ensembles of dipolar bosons in commensurately fill...
Single-atom-resolved detection in optical lattices using quantum-gas microscopes has enabled a new g...
Quantum simulations with ultracold atoms in optical lattices open up an exciting path toward underst...
We present a non-destructive method to probe a complex quantum system using multiple impurity atoms ...
We present here the first measurement of the third-order spatial correlation function for atoms, mad...
At present, great effort is spent on the experimental realization of gauge fields for quantum many-b...
We demonstrate that ultracold interacting bosonic atoms in an optical lattice with large on-site pop...
Correlation functions play an important role for the theoretical and experimental characterization o...
Correlation functions play an important role for the theoretical and experimental characterization o...
The detection of correlation and response functions plays a crucial role in the experimental charac...
We propose to utilize density-density correlations in the image of an expanding gas cloud to probe c...
In the present paper, we investigate a system of strongly interacting bosons confined in two-dimensi...
I present experiments with ultracold atoms which demonstrate a novel avenue to study strongly correl...
We propose a versatile experimental probe for cold atomic gases analogous to the scanning tunneling ...
The reliable detection of single quantum particles has revolutionized the field of quantum optics an...
International audienceStrongly interacting finite ensembles of dipolar bosons in commensurately fill...
Single-atom-resolved detection in optical lattices using quantum-gas microscopes has enabled a new g...
Quantum simulations with ultracold atoms in optical lattices open up an exciting path toward underst...
We present a non-destructive method to probe a complex quantum system using multiple impurity atoms ...
We present here the first measurement of the third-order spatial correlation function for atoms, mad...
At present, great effort is spent on the experimental realization of gauge fields for quantum many-b...
We demonstrate that ultracold interacting bosonic atoms in an optical lattice with large on-site pop...