Extended self-energy functional approach for strongly-correlated lattice bosons in the superfluid phase
Abstract
Among the various numerical techniques to study the physics of strongly correlated quantum many-body systems, the self-energy functional approach (SFA) has become increasingly important. In its previous form, however, SFA is not applicable to Bose-Einstein condensation or superfluidity. In this paper we show how to overcome this shortcoming. To this end we identify an appropriate quantity, which we term , that represents the correlation correction of the condensate order parameter, as it does the self-energy for the Green's function. An appropriate functional is derived, which is stationary at the exact physical realizations of and of the self-energy. Its derivation is based on a functional-integral representation of the grand potential followed by an appropriate sequence of Legendre transformations. The approach is not perturbative and therefore applicable to a wide range of models with local interactions. We show that the variational cluster approach based on the extended self-energy functional is equivalent to the "pseudoparticle" approach introduced in Phys. Rev. B, 83, 134507 (2011). We present results for the superfluid density in the two-dimensional Bose-Hubbard model, which show a remarkable agreement with those of Quantum-Monte-Carlo calculations.
Keywords
Cite
@article{arxiv.1103.3664,
title = {Extended self-energy functional approach for strongly-correlated lattice bosons in the superfluid phase},
author = {Enrico Arrigoni and Michael Knap and Wolfgang von der Linden},
journal= {arXiv preprint arXiv:1103.3664},
year = {2011}
}
Comments
1 additional figure showing the region close to the tip of the Mott lobe, minor changes in the text