Entangling Atomic Spins with a Strong Rydberg-Dressed Interaction
Abstract
Controlling quantum entanglement between parts of a many-body system is the key to unlocking the power of quantum information processing for applications such as quantum computation, high-precision sensing, and simulation of many-body physics. Spin degrees of freedom of ultracold neutral atoms in their ground electronic state provide a natural platform given their long coherence times and our ability to control them with magneto-optical fields, but creating strong coherent coupling between spins has been challenging. We demonstrate a Rydberg-dressed ground-state blockade that provides a strong tunable interaction energy (1 MHz in units of Planck's constant) between spins of individually trapped cesium atoms. With this interaction we directly produce Bell-state entanglement between two atoms with a fidelity 81(2)%, excluding atom loss events, and 60(3)% when loss is included.
Cite
@article{arxiv.1501.03862,
title = {Entangling Atomic Spins with a Strong Rydberg-Dressed Interaction},
author = {Y. -Y. Jau and A. M. Hankin and Tyler Keating and I. H. Deutsch and G. W. Biedermann},
journal= {arXiv preprint arXiv:1501.03862},
year = {2016}
}
Comments
8 pages, 6 figures