At very low temperature, a quasi-one-dimensional ensemble of atoms with attractive interactions tend to form a bright soliton. When exposed to a sufficiently weak external potential, the shape of the soliton is not modified, but its external motion is affected. We develop in detail the Bogoliubov approach for the problem, treating, in a non-perturbative way, the motion of the center of mass of the soliton. Quantization of this motion allows us to discuss its long time properties. In particular, in the presence of a disordered potential, the quantum motion of the center of mass of a bright soliton may exhibit Anderson localization, on a localization length which may be much larger than the soliton size and could be observed experimentally
The bright matter-wave soliton propagation through a barrier with a rapidly oscillating position is ...
We numerically study the classical and quantum dynamics of an atomic bright soliton in a highly elon...
Dark solitons are thought to always repel so that bound states of dark solitons do not form. We show...
At low temperature, a quasi-one-dimensional ensemble of atoms with an attractive interaction forms a...
The center of mass of a bright soliton in a Bose-Einstein condensate may reveal Anderson localizatio...
We consider a dark soliton in a Bose-Einstein condensate in the presence of a weak disorder potentia...
We study the affinities between the shape of the bright soliton of the one-dimensional nonlinear Sch...
We study a quasi-one-dimensional attractive Bose gas confined in an optical lattice with a superimpo...
Adopting a mean-field description for a two-component atomic Bose-Einstein condensate, we study the ...
International audienceWe observe nonlinear scattering of 39 K atomic bright solitons launched in a o...
We variationally determine the dynamics of bright soliton trains composed of harmonically trapped Bo...
We variationally determine the dynamics of bright soliton trains composed of harmonically trapped Bo...
We study quantum dynamics of bosonic atoms that are excited to form a phase kink, or several kinks, ...
In this work we study Anderson localization of quantum states in different kind of disordered media....
We introduce a one-dimensional spatially inhomogeneous Bose-Hubbard model (BHM) with the strength of...
The bright matter-wave soliton propagation through a barrier with a rapidly oscillating position is ...
We numerically study the classical and quantum dynamics of an atomic bright soliton in a highly elon...
Dark solitons are thought to always repel so that bound states of dark solitons do not form. We show...
At low temperature, a quasi-one-dimensional ensemble of atoms with an attractive interaction forms a...
The center of mass of a bright soliton in a Bose-Einstein condensate may reveal Anderson localizatio...
We consider a dark soliton in a Bose-Einstein condensate in the presence of a weak disorder potentia...
We study the affinities between the shape of the bright soliton of the one-dimensional nonlinear Sch...
We study a quasi-one-dimensional attractive Bose gas confined in an optical lattice with a superimpo...
Adopting a mean-field description for a two-component atomic Bose-Einstein condensate, we study the ...
International audienceWe observe nonlinear scattering of 39 K atomic bright solitons launched in a o...
We variationally determine the dynamics of bright soliton trains composed of harmonically trapped Bo...
We variationally determine the dynamics of bright soliton trains composed of harmonically trapped Bo...
We study quantum dynamics of bosonic atoms that are excited to form a phase kink, or several kinks, ...
In this work we study Anderson localization of quantum states in different kind of disordered media....
We introduce a one-dimensional spatially inhomogeneous Bose-Hubbard model (BHM) with the strength of...
The bright matter-wave soliton propagation through a barrier with a rapidly oscillating position is ...
We numerically study the classical and quantum dynamics of an atomic bright soliton in a highly elon...
Dark solitons are thought to always repel so that bound states of dark solitons do not form. We show...