A quantum many-body spin system in an optical lattice clock
Abstract
Strongly interacting quantum many-body systems are fundamentally compelling and ubiquitous in science. However, their complexity generally prevents exact solutions of their dynamics. Precisely engineered ultracold atomic gases are emerging as a powerful tool to unravel these challenging physical problems. Here we present a new laboratory for the study of many-body effects: strongly interacting two-level systems formed by the clock states in Sr, which are used to realize a neutral atom optical clock that performs at the highest level of optical-atomic coherence and with precision near the limit set by quantum fluctuations. Our measurements of the collective spin evolution reveal signatures of many-body dynamics, including beyond-mean-field effects. We derive a many-body Hamiltonian that describes the experimental observation of severely distorted lineshapes, atomic spin coherence decay, density-dependent frequency shifts, and correlated quantum spin noise. These investigations open the door to exploring quantum many-body effects and entanglement in quantum systems with optical energy splittings, using highly coherent and precisely controlled optical lattice clocks.
Cite
@article{arxiv.1212.6291,
title = {A quantum many-body spin system in an optical lattice clock},
author = {M. J. Martin and M. Bishof and M. D. Swallows and X. Zhang and C. Benko and J. von-Stecher and A. V. Gorshkov and A. M. Rey and Jun Ye},
journal= {arXiv preprint arXiv:1212.6291},
year = {2015}
}
Comments
21 pages, 6 figures