Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
1844516 | Nuclear Physics B | 2006 | 16 Pages |
Abstract
We consider a generic time-reversal invariant model of fermions hopping randomly on a square lattice. By means of the conventional replica-trick within the fermionic path-integral formalism, the model is mapped onto a non-linear Ï-model with fields spanning the coset U(4N)/Sp(2N), Nâ0. We determine the proper scaling combinations of an infinite family of relevant operators which control deviations from perfect two-sublattice symmetry. This allows us to extract the low-energy behavior of the density of states, which agrees with earlier results obtained in particular two-sublattice models with Dirac-like single-particle dispersion. The agreement proves the efficacy of the conventional fermionic-path-integral approach to disordered systems, which, in spite of many controversial aspects, like the zero-replica limit, remains one of the more versatile theoretical tool to deal with disordered electrons.
Related Topics
Physical Sciences and Engineering
Mathematics
Mathematical Physics
Authors
Luca Dell'Anna,