We use coherent excitation of 3-16 atom ensembles to demonstrate collective
Rabi flopping mediated by Rydberg blockade. Using calibrated atom number
measurements, we quantitatively confirm the expected \$N\$ Rabi frequency
enhancement to within 4\%. The resulting atom number distributions are
consistent with essentially perfect blockade. We then use collective Rabi \$\pi\$
pulses to produce \$N=1,2\$ atom number Fock states with fidelities of 62\%
and 48\% respectively. The \$N=2\$ Fock state shows the collective Rabi
frequency enhancement without corruption from atom number fluctuations.
%0 Generic
%1 Ebert2013Atomic
%A Ebert, Matthew
%A Gill, Alexander
%A Gibbons, Michael
%A Zhang, Xianli
%A Saffman, Mark
%A Walker, Thad G.
%D 2013
%K blockade, rydberg
%T Atomic Fock State Preparation Using Rydberg Blockade
%U http://arxiv.org/abs/1310.7561
%X We use coherent excitation of 3-16 atom ensembles to demonstrate collective
Rabi flopping mediated by Rydberg blockade. Using calibrated atom number
measurements, we quantitatively confirm the expected \$N\$ Rabi frequency
enhancement to within 4\%. The resulting atom number distributions are
consistent with essentially perfect blockade. We then use collective Rabi \$\pi\$
pulses to produce \$N=1,2\$ atom number Fock states with fidelities of 62\%
and 48\% respectively. The \$N=2\$ Fock state shows the collective Rabi
frequency enhancement without corruption from atom number fluctuations.
@misc{Ebert2013Atomic,
abstract = {We use coherent excitation of 3-16 atom ensembles to demonstrate collective
Rabi flopping mediated by Rydberg blockade. Using calibrated atom number
measurements, we quantitatively confirm the expected \$\sqrt{N}\$ Rabi frequency
enhancement to within 4\%. The resulting atom number distributions are
consistent with essentially perfect blockade. We then use collective Rabi \$\pi\$
pulses to produce \${\cal N}=1,2\$ atom number Fock states with fidelities of 62\%
and 48\% respectively. The \${\cal N}=2\$ Fock state shows the collective Rabi
frequency enhancement without corruption from atom number fluctuations.},
added-at = {2019-02-26T15:22:34.000+0100},
archiveprefix = {arXiv},
author = {Ebert, Matthew and Gill, Alexander and Gibbons, Michael and Zhang, Xianli and Saffman, Mark and Walker, Thad G.},
biburl = {https://www.bibsonomy.org/bibtex/295500c1c4fcecdcfd5efd16c29f3ff68/rspreeuw},
citeulike-article-id = {12796787},
citeulike-linkout-0 = {http://arxiv.org/abs/1310.7561},
citeulike-linkout-1 = {http://arxiv.org/pdf/1310.7561},
day = 28,
eprint = {1310.7561},
interhash = {4d02c47ccd4d5cf9f1a0b4e4a1d44e88},
intrahash = {95500c1c4fcecdcfd5efd16c29f3ff68},
keywords = {blockade, rydberg},
month = oct,
posted-at = {2013-11-21 09:35:59},
priority = {2},
timestamp = {2019-02-26T15:22:34.000+0100},
title = {{Atomic Fock State Preparation Using Rydberg Blockade}},
url = {http://arxiv.org/abs/1310.7561},
year = 2013
}