paper

Evolution of One-Particle and Double-Occupied Green Functions for the Hubbard Model at Half-Filling With Lifetime Effects Within The Moment Approach

arXiv:cond-mat/9811356 · doi:10.1103/PhysRevB.60.5366

Abstract

We evaluate the one-particle and double-occupied Green functions for the Hubbard model at half-filling using the moment approach of Nolting. Our starting point is a self-energy, , which has a single pole, , with {\it spectral} weight, , and quasi-particle lifetime, . In our approach, becomes the central feature of the many-body problem and due to three unkown -parameters we have to satisfy only the first three sum rules instead of four as in the canonical formulation of Nolting. This self-energy choice forces our system to be a non-Fermi liquid for any value of the interaction, since it does not vanish at zero frequency. The one-particle Green function, , shows the finger-print of a strongly correlated system, i.e., a double peak structure in the one-particle spectral density, , vs for intermediate values of the interaction. Close to the Mott Insulator-Transition, , becomes a wide single peak, signaling the absence of quasi-particles.

08 pages, 12 figures ps, revtex, submitted to Phys. Rev. B