doi:10.1088/1367-2630/10/4/045030 Abstract. We show that nuclear motion of Rydberg atoms can be induced by resonant dipole–dipole interactions that trigger the energy transfer between two energetically close Rydberg states. How and if the atoms move depends on their initial arrangement as well as on the initial electronic excitation. Using a mixed quantum/classical propagation scheme, we obtain the trajectories and kinetic energies of atoms, initially arranged in a regular chain and prepared in excitonic eigenstates. The influence of the off-diagonal disorder on the motion of the atoms is examined and it is shown that irregularity in the arrangement of the atoms can lead to an acceleration of the nuclear dynamics. 3 Author to whom any corre...
The dipole-dipole interaction between two Rydberg atoms depends on the relative orientation of the a...
We investigate a possible mechanism for the autoionization of ultracold Rydberg gases, based on the ...
The response of rubidium Rydberg atoms with principal quantum number n = 390 to one or more half-cyc...
We investigate excitation transfer and migration processes in a cold gas of rubidium Rydberg atoms. ...
Strong resonant dipole-dipole interactions in flexible Rydberg aggregates enable the formation of ex...
We study resonant energy transfer in a one-dimensional chain of two to five atoms by analyzing time-...
We consider the interplay between excitonic and atomic motion in a regular, flexible chain of Rydber...
The dipole-dipole interaction strongly couples ultracold highly excited atoms, known as Rydberg atom...
We study the link between atomic motion and exciton transport in flexible Rydberg aggregates, assemb...
Atoms in high-lying Rydberg states strongly interact with each other via the dipole-dipole or van de...
A new method for visualizing energy trans-fer between highly excited atoms may pro-vide insight into...
Ultracold Rydberg atoms serve as good systems in which resonant dipole-dipole interactions can be ob...
We demonstrate that through localised Rydberg excitation in a three-dimensional cold atom cloud atom...
We study the nonequilibrium dynamics of quantum jumps in a one-dimensional chain of atoms. Each atom...
We have observed resonant energy transfer between cold Rydberg atoms in spatially separated cylinder...
The dipole-dipole interaction between two Rydberg atoms depends on the relative orientation of the a...
We investigate a possible mechanism for the autoionization of ultracold Rydberg gases, based on the ...
The response of rubidium Rydberg atoms with principal quantum number n = 390 to one or more half-cyc...
We investigate excitation transfer and migration processes in a cold gas of rubidium Rydberg atoms. ...
Strong resonant dipole-dipole interactions in flexible Rydberg aggregates enable the formation of ex...
We study resonant energy transfer in a one-dimensional chain of two to five atoms by analyzing time-...
We consider the interplay between excitonic and atomic motion in a regular, flexible chain of Rydber...
The dipole-dipole interaction strongly couples ultracold highly excited atoms, known as Rydberg atom...
We study the link between atomic motion and exciton transport in flexible Rydberg aggregates, assemb...
Atoms in high-lying Rydberg states strongly interact with each other via the dipole-dipole or van de...
A new method for visualizing energy trans-fer between highly excited atoms may pro-vide insight into...
Ultracold Rydberg atoms serve as good systems in which resonant dipole-dipole interactions can be ob...
We demonstrate that through localised Rydberg excitation in a three-dimensional cold atom cloud atom...
We study the nonequilibrium dynamics of quantum jumps in a one-dimensional chain of atoms. Each atom...
We have observed resonant energy transfer between cold Rydberg atoms in spatially separated cylinder...
The dipole-dipole interaction between two Rydberg atoms depends on the relative orientation of the a...
We investigate a possible mechanism for the autoionization of ultracold Rydberg gases, based on the ...
The response of rubidium Rydberg atoms with principal quantum number n = 390 to one or more half-cyc...