On ground-state instability in two-dimensional antiferromagnetic systems
Abstract
We discuss the stability of the antiferromagnetic ground state in two spatial dimensions. We start with a general analysis, based on Gribov's current-conservation techniques, of the bosonic modes in systems with magnetic order. We argue that the Goldstone and Higgs modes mix in antiferromagnetic systems, and this leads to an effective three-point interaction. We then analyze the instability of the antiferromagnetic system in two spatial dimensions by studying the non-perturbative behaviour of the Higgs boson self-energy using the Dyson--Schwinger equations. The ground state turns out to be unstable for all values of the three-point coupling. We interpret this as being due to the formation of a (high-) superconducting condensate. The carrier doping dependence of the energy gap has a general behaviour that is consistent with high- superconductivity. Superconductivity co-exists with antiferromagnetic order for large magnetization, or small doping.
Cite
@article{arxiv.1006.4211,
title = {On ground-state instability in two-dimensional antiferromagnetic systems},
author = {K. Odagiri and T. Yanagisawa},
journal= {arXiv preprint arXiv:1006.4211},
year = {2012}
}
Comments
This paper has been withdrawn by the author due to the incomplete understanding of the physics involved. The formalism is worked out more fully in arXiv:1112.6036