Symmetry relation for multifractal spectra at random critical points
Abstract
Random critical points are generically characterized by multifractal properties. In the field of Anderson localization, Mirlin, Fyodorov, Mildenberger and Evers [Phys. Rev. Lett 97, 046803 (2006)] have proposed that the singularity spectrum of eigenfunctions satisfies the exact symmetry at any Anderson transition. In the present paper, we analyse the physical origin of this symmetry in relation with the Gallavotti-Cohen fluctuation relations of large deviation functions that are well-known in the field of non-equilibrium dynamics: the multifractal spectrum of the disordered model corresponds to the large deviation function of the rescaling exponent along a renormalization trajectory in the effective time . We conclude that the symmetry discovered on the specific example of Anderson transitions should actually be satisfied at many other random critical points after an appropriate translation. For many-body random phase transitions, where the critical properties are usually analyzed in terms of the multifractal spectrum and of the moments exponents X(N) of two-point correlation function [A. Ludwig, Nucl. Phys. B330, 639 (1990)], the symmetry becomes , or equivalently for the anomalous parts . We present numerical tests in favor of this symmetry for the 2D random state Potts model with various .
Cite
@article{arxiv.0909.0584,
title = {Symmetry relation for multifractal spectra at random critical points},
author = {Cecile Monthus and Bertrand Berche and Christophe Chatelain},
journal= {arXiv preprint arXiv:0909.0584},
year = {2009}
}
Comments
15 pages, 3 figures, v2=final version