Selective Rydberg pumping via strong dipole blockade
Abstract
The resonant dipole-dipole interaction between highly excited Rydberg levels dominates the interaction of neutral atoms at short distances scaling as . Here we take advantage of the combined effects of strong dipole-dipole interaction and multifrequency driving fields to propose one type of selective Rydberg pumping mechanism. In the computational basis of two atoms , this mechanism allows to be resonantly pumped upwards to the single-excited Rydberg states while the transitions of the other three states are suppressed. From the perspective of mathematical form, we achieve an analogous F\"{o}ster resonance for ground states of neutral atoms. The performance of this selective Rydberg pumping is evaluated using the definition of fidelity for controlled- gate, which manifests a characteristic of robustness to deviation of interatomic distance, fluctuation of F\"{o}ster resonance defect, and spontaneous emission of double-excited Rydberg states. As applications of this mechanism, we discuss in detail the preparation of the maximally entangled symmetric state for two atoms via ground-state blockade, and the maximally entangled antisymmetric state via engineered spontaneous emission, within the state-of-the-art experiments, respectively.
Cite
@article{arxiv.2006.10989,
title = {Selective Rydberg pumping via strong dipole blockade},
author = {Xiao-Qiang Shao},
journal= {arXiv preprint arXiv:2006.10989},
year = {2020}
}
Comments
11 pages, 13 figures, and comments are welcome