We analyze the microscopic few-body properties of dipolar particles confined in two parallel quasi-one-dimensional harmonic traps. In particular, we show that an adiabatic rotation of the dipole orientation about the trap axes can drive an initially nonlocalized few-fermion state into a localized state with strong intertrap pairing. With an instant, nonadiabatic rotation, however, localization is inhibited and a highly excited state is reached. This state may be interpreted as the few-body analog of a super-Tonks-Girardeau state, known from one-dimensional systems with contact interactions
Recent experimental advances in realizing degenerate quantum dipolar gases in optical lattices and t...
We consider a ring-shaped triple-well potential with few polar bosons characterized by a long-range ...
We study the few-body dynamics of dipolar bosons in one-dimensional double-wells. By varying the int...
We study the ground state of few bosons with repulsive dipole-dipole interaction in a quasi-one-dime...
We study the few-body physics of trapped atoms or molecules with electric or magnetic dipole moments...
We study a system of few fermions in a one-dimensional harmonic trap and focus on the case of dipola...
We study a strongly attractive system of a few spin-(1/2) fermions confined in a one-dimensional har...
Systems of strongly interacting dipoles offer an attractive platform to study many-body localized ph...
We show that dipolar bosons and fermions confined in a quasi-one-dimensional ring trap exhibit a ric...
Abstract Ultracold polar molecules in multilayered systems have been experimentally realized very re...
We consider dipolar interactions between heteronuclear molecules in low-dimensional geometries. The ...
Motivated by the recent experimental measurements of the dielectric property of confined quantum dip...
This thesis reports on the preparation of a tunable few-fermion system using ultracold 6Li atoms in ...
Dipolar Bosonic atoms confined in external potentials open up new avenues for quantum-state manipula...
We study strongly correlated ground and excited states of rotating quasi-2D Fermi gases constituted ...
Recent experimental advances in realizing degenerate quantum dipolar gases in optical lattices and t...
We consider a ring-shaped triple-well potential with few polar bosons characterized by a long-range ...
We study the few-body dynamics of dipolar bosons in one-dimensional double-wells. By varying the int...
We study the ground state of few bosons with repulsive dipole-dipole interaction in a quasi-one-dime...
We study the few-body physics of trapped atoms or molecules with electric or magnetic dipole moments...
We study a system of few fermions in a one-dimensional harmonic trap and focus on the case of dipola...
We study a strongly attractive system of a few spin-(1/2) fermions confined in a one-dimensional har...
Systems of strongly interacting dipoles offer an attractive platform to study many-body localized ph...
We show that dipolar bosons and fermions confined in a quasi-one-dimensional ring trap exhibit a ric...
Abstract Ultracold polar molecules in multilayered systems have been experimentally realized very re...
We consider dipolar interactions between heteronuclear molecules in low-dimensional geometries. The ...
Motivated by the recent experimental measurements of the dielectric property of confined quantum dip...
This thesis reports on the preparation of a tunable few-fermion system using ultracold 6Li atoms in ...
Dipolar Bosonic atoms confined in external potentials open up new avenues for quantum-state manipula...
We study strongly correlated ground and excited states of rotating quasi-2D Fermi gases constituted ...
Recent experimental advances in realizing degenerate quantum dipolar gases in optical lattices and t...
We consider a ring-shaped triple-well potential with few polar bosons characterized by a long-range ...
We study the few-body dynamics of dipolar bosons in one-dimensional double-wells. By varying the int...