English

Universality of low-energy scattering in (2+1) dimensions

High Energy Physics - Theory 2011-08-17 v1

Abstract

We prove that, in (2+1) dimensions, the S-wave phase shift, δ0(k) \delta_0(k), k being the c.m. momentum, vanishes as either δ0cln(k/m)orδ0O(k2)\delta_0 \to {c\over \ln (k/m)} or \delta_0 \to O(k^2) as k0k\to 0. The constant cc is universal and c=π/2c=\pi/2. This result is established first in the framework of the Schr\"odinger equation for a large class of potentials, second for a massive field theory from proved analyticity and unitarity, and, finally, we look at perturbation theory in ϕ34\phi_3^4 and study its relation to our non-perturbative result. The remarkable fact here is that in n-th order the perturbative amplitude diverges like (lnk)n(\ln k)^n as k0k\to 0, while the full amplitude vanishes as (lnk)1(\ln k)^{-1}. We show how these two facts can be reconciled.

Keywords

Cite

@article{arxiv.hep-th/9805036,
  title  = {Universality of low-energy scattering in (2+1) dimensions},
  author = {Khosrow Chadan and N. N. Khuri and Andre Martin and Tai Tsun Wu},
  journal= {arXiv preprint arXiv:hep-th/9805036},
  year   = {2011}
}

Comments

23 pages, Latex