Dynamical vertex approximation in its parquet implementation: application to Hubbard nano-rings
Abstract
We have implemented the dynamical vertex approximation (DA) in its full parquet-based version to include spatial correlations on all length scales and in {\sl all} scattering channels. The algorithm is applied to study the electronic self-energies and the spectral properties of finite-size one-dimensional Hubbard models with periodic boundary conditions (nanoscopic Hubbard rings). From a methodological point of view, our calculations and their comparison to the results obtained within dynamical mean-field theory, plain parquet approximation, and the exact numerical solution, allow us to evaluate the performance of the DA algorithm in the most challenging situation of low dimensions. From a physical perspective, our results unveil how non-local correlations affect the spectral properties of nanoscopic systems of various sizes in different regimes of interaction strength.
Keywords
Cite
@article{arxiv.1410.4733,
title = {Dynamical vertex approximation in its parquet implementation: application to Hubbard nano-rings},
author = {A. Valli and T. Schäfer and P. Thunström and G. Rohringer and S. Andergassen and G. Sangiovanni and K. Held and A. Toschi},
journal= {arXiv preprint arXiv:1410.4733},
year = {2015}
}
Comments
15 pages, 16 figures