arXiv · cond-mat/0407473
Anomalous self-energy and Fermi surface quasi-splitting in the vicinity of a ferromagnetic instability
Abstract
We discuss the low-temperature behavior of the electronic self-energy in the vicinity of a ferromagnetic instability in two dimensions within the two-particle self-consistent approximation, functional renormalization group and Ward-identity approaches. Although the long-range magnetic order is absent at T>0, the self-energy has a non-Fermi liquid form at low energies w<Δ_0 near the Fermi level, where Delta_0 is the ground-state spin splitting. The spectral function at temperatures T<Delta_0 has a two-peak structure with finite spectral weight at the Fermi level. The simultaneous inclusion of self-energy and vertex corrections shows that the above results remain qualitatively unchanged down to very low temperatures T<<Delta_0. It is argued, that this form of the spectral functions implies the quasi-splitting of the Fermi surface in the paramagnetic phase in the presence of strong ferromagnetic fluctuations.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
A. A. Katanin, A. P. Kampf, V. Yu. Irkhin. 2004-07-19. Anomalous self-energy and Fermi surface quasi-splitting in the vicinity of a ferromagnetic instability. https://doi.org/10.1103/physrevb.71.085105
Cite the original work for its findings. Save a collection to share your selection of sources.