arXiv · 2407.21764
Energy Transport Among Highly-Polarized Atoms
Abstract
We measure the transport of energy among the internal states of ultracold rubidium Rydberg atoms coupled by dipole-dipole exchange. In a magneto-optical trap, a static electric field of a few V/cm shifts the energy levels of the atoms. For a particular principal quantum number, $n$, the angular momentum eigenstates $\ell > 4$ are nearly degenerate at zero electric field. At nonzero field, a manifold of equally spaced clusters form a ladder with each rung consisting of a set of closely spaced $m$ energy eigenstates. We excite Rydberg atoms to energy levels near the center of the manifold and allow them to exchange energy via resonant dipole-dipole interactions. We measure the time evolution as energy spreads away from the center of the manifold, which reveals that the system may fail to thermalize for long interaction times. A computational model that includes only a few essential features of the system qualitatively agrees with this result.
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Catherine D. Opsahl, Yuan Jiang, Samantha A. Grubb, Alan T. Okinaka, Nicolaus A. Chlanda, Hannah S. Conley, Aidan D. Kirk, Sarah E. Spielman, Thomas J. Carroll, Michael W. Noel. 2024-07-31. Energy Transport Among Highly-Polarized Atoms. https://arxiv.org/abs/2407.21764
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