Raman sideband cooling of a 138Ba+ ion using a Zeeman interval
Abstract
Motional ground state cooling and internal state preparation are important elements for quantum logic spectroscopy (QLS), a class of quantum information processing. Since QLS does not require the high gate fidelities usually associated with quantum computation and quantum simulation, it is possible to make simplifying choices in ion species and quantum protocols at the expense of some fidelity. Here, we report sideband cooling and motional state detection protocols for Ba of sufficient fidelity for QLS without an extremely narrowband laser or the use of a species with hyperfine structure. We use the two S Zeeman sublevels of Ba to Raman sideband cool a single ion to the motional ground state. Because of the small Zeeman splitting, near-resonant Raman sideband cooling of Ba requires only the Doppler cooling lasers and two additional AOMs. Observing the near-resonant Raman optical pumping fluorescence, we estimate a final average motional quantum number . We additionally employ a second, far-off-resonant laser driving Raman -pulses between the two Zeeman sublevels to provide motional state detection for QLS and to confirm the sideband cooling efficiency, measuring a final .
Keywords
Cite
@article{arxiv.1603.09322,
title = {Raman sideband cooling of a 138Ba+ ion using a Zeeman interval},
author = {Christopher M. Seck and Mark G. Kokish and Matthew R. Dietrich and Brian C. Odom},
journal= {arXiv preprint arXiv:1603.09322},
year = {2016}
}