Engineering a Hamiltonian system with tunable interactions provides opportunities to optimize performance for quantum sensing and explore emerging phenomena of many-body systems. An optical lattice clock based on partially delocalized Wannier-Stark states in a gravity-tilted shallow lattice supports superior quantum coherence and adjustable interactions via spin-orbit coupling, thus presenting a powerful spin model realization. The relative strength of the on-site and off-site interactions can be tuned to achieve a zero density shift at a `magic' lattice depth. This mechanism, together with a large number of atoms, enables the demonstration of the most stable atomic clock while minimizing a key systematic uncertainty related to atomic densi...
We study cold atoms in an optical lattice with synthetic spin-orbit coupling in the Mott-insulator r...
Laser-cooled and quantum degenerate atoms are being pursued as quantum simulators and form the basis...
Optical lattices provide ideal experimental tools for simulating a wide variety of physical systems....
Engineered spin-orbit coupling (SOC) in cold-atom systems can enable the study of new synthetic mate...
We demonstrate a novel way of synthesizing spin-orbit interactions in ultracold quantum gases, based...
We describe a general technique that allows one to induce and control strong interaction between spi...
We theoretically demonstrate a viable approach to spin squeezing in optical lattice clocks via optic...
Quantum mechanical superexchange interactions form the basis of quantum magnetism in strongly correl...
The interplay between spin and motional degrees of freedom in interacting electron systems has been ...
Strontium optical lattice clocks have the potential to simultaneously interrogate millions of atoms ...
Optical lattices provide ideal experimental tools for simulating a wide variety of physical systems....
International audienceA new class of quantum engineered robust sensors is proposed by applying twist...
We present a unifying theoretical framework that describes recently observed many-body effects durin...
We theoretically demonstrate a viable approach to spin squeezing in optical lattice clocks via optic...
Strontium optical lattice clocks at JILA recently demonstrated record-high accuracy and stability. T...
We study cold atoms in an optical lattice with synthetic spin-orbit coupling in the Mott-insulator r...
Laser-cooled and quantum degenerate atoms are being pursued as quantum simulators and form the basis...
Optical lattices provide ideal experimental tools for simulating a wide variety of physical systems....
Engineered spin-orbit coupling (SOC) in cold-atom systems can enable the study of new synthetic mate...
We demonstrate a novel way of synthesizing spin-orbit interactions in ultracold quantum gases, based...
We describe a general technique that allows one to induce and control strong interaction between spi...
We theoretically demonstrate a viable approach to spin squeezing in optical lattice clocks via optic...
Quantum mechanical superexchange interactions form the basis of quantum magnetism in strongly correl...
The interplay between spin and motional degrees of freedom in interacting electron systems has been ...
Strontium optical lattice clocks have the potential to simultaneously interrogate millions of atoms ...
Optical lattices provide ideal experimental tools for simulating a wide variety of physical systems....
International audienceA new class of quantum engineered robust sensors is proposed by applying twist...
We present a unifying theoretical framework that describes recently observed many-body effects durin...
We theoretically demonstrate a viable approach to spin squeezing in optical lattice clocks via optic...
Strontium optical lattice clocks at JILA recently demonstrated record-high accuracy and stability. T...
We study cold atoms in an optical lattice with synthetic spin-orbit coupling in the Mott-insulator r...
Laser-cooled and quantum degenerate atoms are being pursued as quantum simulators and form the basis...
Optical lattices provide ideal experimental tools for simulating a wide variety of physical systems....