Localization transition of stiff directed lines in random media
arXiv:1212.3203 · doi:10.1103/PhysRevE.86.060102
Abstract
We investigate the localization of stiff directed lines with bending energy by a short-range random potential. Using perturbative arguments, Flory arguments, and a replica calculation, we show that a stiff directed line in 1+d dimensions undergoes a localization transition with increasing disorder for . We demonstrate that this transition is accessible by numerical transfer matrix calculations in 1+1 dimensions and analyze the properties of the disorder-dominated phase. On the basis of the two-replica problem, we propose a relation between the localization of stiff directed lines in 1+d dimensions and of directed lines under tension in 1+3d dimensions, which is strongly supported by identical free energy distributions. This shows that pair interactions in the replicated Hamiltonian determine the nature of directed line localization transitions with consequences for the critical behavior of the Kardar-Parisi-Zhang (KPZ) equation. Furthermore, we quantify how the persistence length of the stiff directed line is reduced by disorder.
5 pages, 4 figures
References in corpus (4)
- Duality mapping and unbinding transitions of semiflexible and directed polymers
- Freezing transition of the directed polymer in a random medium : location of the critical temperature and unusual critical properties
- Numerical study of the directed polymer in a 1+3 dimensional random medium
- Directed polymer in a random medium of dimension 1+3 : multifractal properties at the localization/delocalization transition