Voltage induced metal-insulator transition in a one dimensional charge density wave
Strongly Correlated Electrons
2018-12-03 v2
Abstract
We present a theoretical investigation of the voltage-driven metal insulator transition based on solving coupled Boltzmann and Hartree-Fock equations to determine the insulating gap and the electron distribution in a model system -- a one dimensional charge density wave. Electric fields that are parametrically small relative to energy gaps can shift the electron distribution away from the momentum-space region where interband relaxation is efficient, leading to a highly non-equilibrium quasiparticle distribution even in the absence of Zener tunneling. The gap equation is found to have regions of multistability; a non-equilibrium analog of the free energy is constructed and used to determine which phase is preferred.
Keywords
Cite
@article{arxiv.1807.09249,
title = {Voltage induced metal-insulator transition in a one dimensional charge density wave},
author = {Giuliano Chiriacò and Andrew J. Millis},
journal= {arXiv preprint arXiv:1807.09249},
year = {2018}
}
Comments
8 pages, 5 figures