Steady-state crystallization of Rydberg excitations in an optically driven lattice gas
Abstract
We study resonant optical excitations of atoms in a one-dimensional lattice to the Rydberg states interacting via the van der Waals potential which suppresses simultaneous excitation of neighboring atoms. Considering two- and three-level excitation schemes, we analyze the dynamics and stationary state of the continuously-driven, dissipative many-body system employing time-dependent density-matrix renormalization group (t-DMRG) simulations. We show that two-level atoms can exhibit only nearest neighbor correlations, while three-level atoms under dark-state resonant driving can develop finite-range crystalline order of Rydberg excitations. We present an approximate rate equation model whose analytic solution yields qualitative understanding of the numerical results.
Keywords
Cite
@article{arxiv.1208.2911,
title = {Steady-state crystallization of Rydberg excitations in an optically driven lattice gas},
author = {Michael Hoening and Dominik Muth and David Petrosyan and Michael Fleischhauer},
journal= {arXiv preprint arXiv:1208.2911},
year = {2013}
}
Comments
5 pages,3 figures