Electric-field-driven resistive switching in dissipative Hubbard model
Abstract
We study how strongly correlated electrons on a dissipative lattice evolve from equilibrium when driven by a constant electric field, focusing on the extent of the linear regime and hysteretic non-linear effects at higher fields. We access the non-equilibrium steady states, non-perturbatively in both the field and the electronic interactions, by means of a non-equilibrium dynamical mean-field theory in the Coulomb gauge. The linear response regime is limited by Joule heating effects and breaks down at fields orders of magnitude smaller than the quasi-particle energy scale. For large electronic interactions, strong but experimentally accessible electric fields can induce a resistive switching by driving the strongly correlated metal into a Mott insulator. Hysteretic - curves suggest that the non-equilibrium current is carried through a spatially inhomogeneous metal-insulator mixed state.
Cite
@article{arxiv.1410.0626,
title = {Electric-field-driven resistive switching in dissipative Hubbard model},
author = {Jiajun Li and Camille Aron and Gabriel Kotliar and Jong E Han},
journal= {arXiv preprint arXiv:1410.0626},
year = {2015}
}
Comments
5 pages. 4 figures