Non-equilibrium steady-states in a driven-dissipative superfluid
Abstract
We experimentally study a driven-dissipative Josephson junction array, realized with a weakly interacting Bose Einstein condensate residing in a one-dimensional optical lattice. Engineered losses on one site act as a local dissipative process, while tunneling from the neighboring sites constitutes the driving force. We characterize the emerging steady-states of this atomtronic device. With increasing dissipation strength the system crosses from a superfluid state, characterized by a coherent Josephson current into the lossy site to a resistive state, characterized by an incoherent hopping transport. For intermediate values of , the system exhibits bistability, where a superfluid and a resistive branch coexist. We also study the relaxation dynamics towards the steady-state, where we find a critical slowing down, indicating the presence of a non-equilibrium phase transition.
Cite
@article{arxiv.1507.05007,
title = {Non-equilibrium steady-states in a driven-dissipative superfluid},
author = {Ralf Labouvie and Bodhaditya Santra and Simon Heun and Herwig Ott},
journal= {arXiv preprint arXiv:1507.05007},
year = {2017}
}