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arXiv · 1908.00853

Three-dimensional trapping of individual Rydberg atoms in ponderomotive bottle beam traps

Abstract

We demonstrate three-dimensional trapping of individual Rydberg atoms in holographic optical bottle beam traps. Starting with cold, ground-state $^{87}$Rb atoms held in standard optical tweezers, we excite them to $nS_{1/2}$, $nP_{1/2}$, or $nD_{3/2}$ Rydberg states and transfer them to a hollow trap at 850 nm. For principal quantum numbers $60 \leqslant n \leqslant 90$, the measured trapping time coincides with the Rydberg state lifetime in a 300~K environment. We show that these traps are compatible with quantum information and simulation tasks by performing single qubit microwave Rabi flopping, as well as by measuring the interaction-induced, coherent spin-exchange dynamics between two trapped Rydberg atoms separated by 40 $\mu$m. These results will find applications in the realization of high-fidelity quantum simulations and quantum logic operations with Rydberg atoms.

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Daniel Barredo, Vincent Lienhard, Pascal Scholl, Sylvain de Léséleuc, Thomas Boulier, Antoine Browaeys, Thierry Lahaye. 2019-08-02. Three-dimensional trapping of individual Rydberg atoms in ponderomotive bottle beam traps. https://doi.org/10.1103/physrevlett.124.023201

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