We study the dynamics of the cooling of a gas of caesium atoms in an optical lattice, both experimentally and with 1D full-quantum Monte Carlo simulations. We find that, contrary to the standard interpretation of the Sisyphus model, the cooling process does not work by a continuous decrease of the average kinetic energy of the atoms in the lattice. Instead, we show that the momentum of the atoms follows a bimodal distribution, the atoms being gradually transferred from a hot to a cold mode. We suggest that the cooling mechanism should be depicted in terms of a rate model, describing the transfer between the two modes along with the processes occurring within each mode
International audienceWe study, numerically and experimentally, the momentum distribution of atoms c...
We analyse a laser assisted sympathetic cooling scheme for atoms within the lowest Bloch band of an ...
We have applied the method of single atom trajectories to study the mechanism behind some cooling s...
We study the dynamics of the cooling of a gas of caesium atoms in an optical lattice, both experimen...
We study, numerically and experimentally, the momentum distribution of atoms cooled in optical latti...
We study, numerically and experimentally, the momentum distribution of atoms cooled in optical latti...
International audienceWe study, numerically and experimentally, the momentum distribution of atoms c...
We present a microscopic laser model for many atoms coupled to a single cavity mode, including the l...
Optical lattices are periodic arrangements of laser cooled atoms trapped in potentials created by th...
Optical lattices are periodic arrangements of laser cooled atoms trapped in potentials created by th...
A complete laser cooling setup was built, with focus on threedimensional near-resonant optical latti...
We analyse a laser assisted sympathetic cooling scheme for atoms within the lowest Bloch band of an ...
We investigate theoretically a novel optical technique to cool atomic or molecular species without a...
We extend the theory for laser cooling in a near-resonant optical lattice to include multiple excit...
We present a theoretical analysis of a novel scheme for optical cooling of particles that does not i...
International audienceWe study, numerically and experimentally, the momentum distribution of atoms c...
We analyse a laser assisted sympathetic cooling scheme for atoms within the lowest Bloch band of an ...
We have applied the method of single atom trajectories to study the mechanism behind some cooling s...
We study the dynamics of the cooling of a gas of caesium atoms in an optical lattice, both experimen...
We study, numerically and experimentally, the momentum distribution of atoms cooled in optical latti...
We study, numerically and experimentally, the momentum distribution of atoms cooled in optical latti...
International audienceWe study, numerically and experimentally, the momentum distribution of atoms c...
We present a microscopic laser model for many atoms coupled to a single cavity mode, including the l...
Optical lattices are periodic arrangements of laser cooled atoms trapped in potentials created by th...
Optical lattices are periodic arrangements of laser cooled atoms trapped in potentials created by th...
A complete laser cooling setup was built, with focus on threedimensional near-resonant optical latti...
We analyse a laser assisted sympathetic cooling scheme for atoms within the lowest Bloch band of an ...
We investigate theoretically a novel optical technique to cool atomic or molecular species without a...
We extend the theory for laser cooling in a near-resonant optical lattice to include multiple excit...
We present a theoretical analysis of a novel scheme for optical cooling of particles that does not i...
International audienceWe study, numerically and experimentally, the momentum distribution of atoms c...
We analyse a laser assisted sympathetic cooling scheme for atoms within the lowest Bloch band of an ...
We have applied the method of single atom trajectories to study the mechanism behind some cooling s...