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Solutions of the Two Dimensional Hubbard Model: Benchmarks and Results from a Wide Range of Numerical Algorithms

Authors :
LeBlanc, J. P. F.
Antipov, Andrey E.
Becca, Federico
Bulik, Ireneusz W.
Chan, Garnet Kin-Lic
Chung, Chia-Min
Deng, Youjin
Ferrero, Michel
Henderson, Thomas M.
Jiménez-Hoyos, Carlos A.
Kozik, E.
Liu, Xuan-Wen
Millis, Andrew J.
Prokof'ev, N. V.
Qin, Mingpu
Scuseria, Gustavo E.
Shi, Hao
Svistunov, B. V.
Tocchio, Luca F.
Tupitsyn, I. S.
White, Steven R.
Zhang, Shiwei
Zheng, Bo-Xiao
Zhu, Zhenyue
Gull, Emanuel
Source :
Phys. Rev. X 5, 041041 (2015)
Publication Year :
2015

Abstract

Numerical results for ground state and excited state properties (energies, double occupancies, and Matsubara-axis self energies) of the single-orbital Hubbard model on a two-dimensional square lattice are presented, in order to provide an assessment of our ability to compute accurate results in the thermodynamic limit. Many methods are employed, including auxiliary field quantum Monte Carlo, bare and bold-line diagrammatic Monte Carlo, method of dual fermions, density matrix embedding theory, density matrix renormalization group, dynamical cluster approximation, diffusion Monte Carlo within a fixed node approximation, unrestricted coupled cluster theory, and multi-reference projected Hartree-Fock. Comparison of results obtained by different methods allows for the identification of uncertainties and systematic errors. The importance of extrapolation to converged thermodynamic limit values is emphasized. Cases where agreement between different methods is obtained establish benchmark results that may be useful in the validation of new approaches and the improvement of existing methods.

Details

Database :
arXiv
Journal :
Phys. Rev. X 5, 041041 (2015)
Publication Type :
Report
Accession number :
edsarx.1505.02290
Document Type :
Working Paper
Full Text :
https://doi.org/10.1103/PhysRevX.5.041041