Van der Waals explosion of cold Rydberg clusters
arXiv:1506.08463 · doi:10.1103/PhysRevA.93.030701
Abstract
We report on the direct measurement in real space of the effect of the van der Waals forces between individual Rydberg atoms on their external degrees of freedom. Clusters of Rydberg atoms with inter-particle distances of around 5 μm are created by first generating a small number of seed excitations in a magneto-optical trap, followed by off-resonant excitation that leads to a chain of facilitated excitation events. After a variable expansion time the Rydberg atoms are field ionized, and from the arrival time distributions the size of the Rydberg cluster after expansion is calculated. Our experimental results agree well with a numerical simulation of the van der Waals explosion.
5 pages, 4 figures
References in corpus (9)
- Dipole blockade in a cold Rydberg atomic sample
- Consequences of Zeeman Degeneracy for van der Waals Blockade between Rydberg Atoms
- An experimental and theoretical guide to strongly interacting Rydberg gases
- Out-of-equilibrium structures in strongly interacting Rydberg gases with dissipation
- Mesoscopic Rydberg-blockaded ensembles in the superatom regime and beyond
- Motion of Rydberg atoms induced by resonant dipole-dipole interactions
- Highly-efficient state-selective sub-microsecond photoionization detection of single atoms
- Measurement of van-der-Waals interaction by atom trajectory imaging
- Microwave probes Dipole Blockade and van der Waals Forces in a Cold Rydberg Gas
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