Extracting Infinite System Properties from Finite Size Clusters: `Phase Randomization/Boundary Condition Averaging'
Abstract
When electron-electron correlations are important, it is often necessary to use exact numerical methods, such as Lanczos diagonalization, to study the full many-body Hamiltonian. Unfortunately, such exact diagonalization methods are restricted to small system sizes. We show that if the Hubbard term is replaced by a ``periodic Hubbard" term, the full many body Hamiltonian may be numerically exactly solved, even for very large systems (even 100 sites), though only for low fillings. However, for half-filled systems and large this approach is not only no longer exact, it no longer improves extrapolation to larger systems. We discuss how generalized ``randomized variable averaging'' (RVA) or ``phase randomization'' schemes can be reliably employed to improve extrapolation to large system sizes in this regime. This general approach can be combined with any many-body method and is thus of broad interest and applicability.
Cite
@article{arxiv.cond-mat/9209026,
title = {Extracting Infinite System Properties from Finite Size Clusters: `Phase Randomization/Boundary Condition Averaging'},
author = {J. Tinka Gammel and D. K. Campbell and E. Y. Loh,},
journal= {arXiv preprint arXiv:cond-mat/9209026},
year = {2012}
}
Comments
6 pages, 3 postscript figures, appended