arXiv · 1108.4926
Solving the Parquet Equations for the Hubbard Model beyond Weak Coupling
Abstract
We find that imposing the crossing symmetry in the iteration process considerably extends the range of convergence for solutions of the parquet equations for the Hubbard model. When the crossing symmetry is not imposed, the convergence of both simple iteration and more complicated continuous loading (homotopy) methods are limited to high temperatures and weak interactions. We modify the algorithm to impose the crossing symmetry without increasing the computational complexity. We also imposed time reversal and a subset of the point group symmetries, but they did not further improve the convergence. We elaborate the details of the latency hiding scheme which can significantly improve the performance in the computational implementation. With these modifications, stable solutions for the parquet equations can be obtained by iteration more quickly even for values of the interaction that are a significant fraction of the bandwidth and for temperatures that are much smaller than the bandwidth. This may represent a crucial step towards the solution of two-particle field theories for correlated electron models.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Ka-Ming Tam, H. Fotso, S. -X. Yang, Tae-Woo Lee, J. Moreno, J. Ramanujam, M. Jarrell. 2011-09-02. Solving the Parquet Equations for the Hubbard Model beyond Weak Coupling. https://doi.org/10.1103/physreve.87.013311
Cite the original work for its findings. Save a collection to share your selection of sources.