Charge order induced by electron-lattice interaction in NaV2O5
Abstract
We present Density Matrix Renormalization Group calculations of the ground-state properties of quarter-filled ladders including static electron-lattice coupling. Isolated ladders and two coupled ladders are considered, with model parameters obtained from band-structure calculations for -NaVO. The relevant Holstein coupling to the lattice causes static out-of-plane lattice distortions, which appear concurrently with a charge-ordered state and which exhibit the same zigzag pattern observed in experiments. The inclusion of electron-lattice coupling drastically reduces the critical nearest-neighbor Coulomb repulsion needed to obtain the charge-ordered state. No spin gap is present in the ordered phase. The charge ordering is driven by the Coulomb repulsion and the electron-lattice interaction. With electron-lattice interaction, coupling two ladders has virtually no effect on or on the characteristics of the charge-ordered phase. At , a value consistent with previous estimates, the lattice distortion, charge gap, charge order parameter, and the effective spin coupling are in good agreement with experimental data for NaVO_5$.
Cite
@article{arxiv.cond-mat/0505685,
title = {Charge order induced by electron-lattice interaction in NaV2O5},
author = {B. Edegger and H. G. Evertz and R. M. Noack},
journal= {arXiv preprint arXiv:cond-mat/0505685},
year = {2009}
}
Comments
7 pages, 9 figures