Nonequilibrium dynamics in the one-dimensional Fermi-Hubbard model: Comparison of the nonequilibrium Green-functions approach and the density matrix renormalization group method

The nonequilibrium dynamics of strongly-correlated fermions in lattice systems have attracted considerable interest in the condensed matter and ultracold atomic-gas communities. While experiments have made remarkable progress in recent years, there remains a need for the further development of theoretical tools that can account for both the nonequilibrium conditions and strong correlations. For instance, time-dependent theoretical quantum approaches based on the density matrix renormalization group (DMRG) methods have been primarily applied to one-dimensional setups. Recently, two-dimensional quantum simulations of the expansion of fermions based on nonequilibrium Green functions (NEGF) have been presented [Schlunzen et al., Phys. Rev. B 93, 035107 (2016)] that showed excellent agreement with the experiments. Here we present an extensive comparison of the NEGF approach to numerically accurate DMRG results. The results indicate that NEGF are a reliable theoretical tool for weak to intermediate coupling strengths in arbitrary dimensions and make long simulations possible. This is complementary to DMRG simulations which are particularly efficient at strong coupling.

[1]  Thierry Giamarchi,et al.  Quantum physics in one dimension , 2004 .

[2]  Ericka Stricklin-Parker,et al.  Ann , 2005 .

[3]  R. Stephenson A and V , 1962, The British journal of ophthalmology.

[4]  James S. Langer,et al.  Annual review of condensed matter physics , 2010 .

[5]  Karsten Balzer,et al.  Nonequilibrium Green's Functions Approach to Inhomogeneous Systems , 2012 .

[6]  G. G. Stokes "J." , 1890, The New Yale Book of Quotations.

[7]  Minoru Toda,et al.  Springer Series in Solid-State Sciences , 1989 .

[8]  John B. Shoven,et al.  I , Edinburgh Medical and Surgical Journal.

[9]  David E. Miller,et al.  Quantum Statistical Mechanics , 2002 .