English

Universal Properties of Self-Avoiding Walks from Two-Dimensional Field Theory

High Energy Physics - Theory 2014-11-18 v1 Condensed Matter

Abstract

We use the recently conjectured exact SS-matrix of the massive O(n){\rm O}(n) model to derive its form factors and ground state energy. This information is then used in the limit n0n\to0 to obtain quantitative results for various universal properties of self-avoiding chains and loops. In particular, we give the first theoretical prediction of the amplitude ratio C/DC/D which relates the mean square end-to-end distance of chains to the mean square radius of gyration of closed loops. This agrees with the results from lattice enumeration studies to within their errors, and gives strong support for the various assumptions which enter into the field theoretic derivation. In addition, we obtain results for the scaling function of the structure factor of long loops, and for various amplitude ratios measuring the shape of self-avoiding chains. These quantities are all related to moments of correlation functions which are evaluated as a sum over mm-particle intermediate states in the corresponding field theory. We show that in almost all cases, the restriction to m2m\leq2 gives results which are accurate to at least one part in 10310^3. This remarkable fact is traced to a softening of the m>2m>2 branch cuts relative to their behaviour based on phase space arguments alone, a result which follows from the threshold behaviour of the two-body SS-matrix, S(0)=1S(0)=-1. Since this is a general property of interacting 2d field theories, it suggests that similar approximations may well hold for other models. However, we also study the moments of the area of self-avoiding loops,

Keywords

Cite

@article{arxiv.hep-th/9306028,
  title  = {Universal Properties of Self-Avoiding Walks from Two-Dimensional Field Theory},
  author = {John Cardy and G. Mussardo},
  journal= {arXiv preprint arXiv:hep-th/9306028},
  year   = {2014}
}

Comments

48 pages, UCSBTH-93-12, ISAS-93-75