We propose a mechanism for a velocity-selective device which would allow packets of cold atoms traveling in one direction through a pulsed optical lattice to pass undisturbed, while dispersing atoms traveling in the opposite direction. The mechanism is generic and straightforward: for a simple quantum kicked rotor pulsed with unequal periods, the quantum suppression of momentum diffusion (dynamical localization) yields momentum localization lengths L which are no longer isotropic, as in the standard case, but vary smoothly and controllably with initial momentum
We propose a phase selected transport scenario for ultra-cold matter waves subject to pulsed optical...
We show that reliable control of dynamical localization (DL) in the context of generic Hamiltonians ...
Control over the quantum dynamics of chaotic kicked rotor systems is demonstrated. Specifically, con...
We propose a mechanism for a velocity-selective device which would allow packets of cold atoms trave...
The Kicked Rotor is a well studied example of a classical Hamiltonian chaotic system, where the mome...
Quantum chaos corresponds to the study of systems in which the dynamics are chaotic. The so-called K...
We present the results of experiments performed on cold caesium in a pulsed sinusoidal optical poten...
It is shown that dynamical localization (quantum suppression of classical diffusion) in the context ...
Using a new type of chaotic ratchet generated by pulsed standing waves of light, we propose a mechan...
The dynamics of chaotic Hamiltonian systems such as the kicked rotor continues to guide our understa...
We present a very simple model for realizing directed transport with cold atoms in a pair of periodi...
The quantum kicked rotor is studied experimentally in an atom-optics setting, where we observe the c...
By submitting a cloud of cold caesium atoms to a periodically pulsed standing wave, we experimentall...
Optical lattices are periodic light shift potentials that are created by the interference of several...
Recently, cesium atoms in optical lattices subjected to cycles of unequally spaced pulses have been ...
We propose a phase selected transport scenario for ultra-cold matter waves subject to pulsed optical...
We show that reliable control of dynamical localization (DL) in the context of generic Hamiltonians ...
Control over the quantum dynamics of chaotic kicked rotor systems is demonstrated. Specifically, con...
We propose a mechanism for a velocity-selective device which would allow packets of cold atoms trave...
The Kicked Rotor is a well studied example of a classical Hamiltonian chaotic system, where the mome...
Quantum chaos corresponds to the study of systems in which the dynamics are chaotic. The so-called K...
We present the results of experiments performed on cold caesium in a pulsed sinusoidal optical poten...
It is shown that dynamical localization (quantum suppression of classical diffusion) in the context ...
Using a new type of chaotic ratchet generated by pulsed standing waves of light, we propose a mechan...
The dynamics of chaotic Hamiltonian systems such as the kicked rotor continues to guide our understa...
We present a very simple model for realizing directed transport with cold atoms in a pair of periodi...
The quantum kicked rotor is studied experimentally in an atom-optics setting, where we observe the c...
By submitting a cloud of cold caesium atoms to a periodically pulsed standing wave, we experimentall...
Optical lattices are periodic light shift potentials that are created by the interference of several...
Recently, cesium atoms in optical lattices subjected to cycles of unequally spaced pulses have been ...
We propose a phase selected transport scenario for ultra-cold matter waves subject to pulsed optical...
We show that reliable control of dynamical localization (DL) in the context of generic Hamiltonians ...
Control over the quantum dynamics of chaotic kicked rotor systems is demonstrated. Specifically, con...