English

Effective Field Theory Analysis of Three-Boson Systems at Next-To-Next-To-Leading Order

Nuclear Theory 2013-11-21 v2 Atomic and Molecular Clusters

Abstract

We use an effective field theory for short-range forces (SREFT) to analyze systems of three identical bosons interacting via a two-body potential that generates a scattering length, aa, which is large compared to the range of the interaction, \ell. The amplitude for the scattering of one boson off a bound state of the other two is computed to next-to-next-to-leading order (N2^2LO) in the /a\ell/a expansion. At this order, two pieces of three-body data are required as input in order to renormalize the amplitude (for fixed aa). We apply our results to a model system of three Helium-4 atoms, which are assumed to interact via the TTY potential. We generate N2^2LO predictions for atom-dimer scattering below the dimer breakup threshold using the bound-state energy of the shallow Helium-4 trimer and the atom-dimer scattering length as our two pieces of three-body input. Based on the convergence pattern of the SREFT expansion, as well as differences in the predictions of two renormalization schemes, we conclude that our N2^2LO phase- shift predictions will receive higher-order corrections of <0.2< 0.2%. In contrast, the prediction of SREFT for the binding energy of the "deep" trimer of Helium-4 atoms displays poor convergence.

Keywords

Cite

@article{arxiv.1212.1845,
  title  = {Effective Field Theory Analysis of Three-Boson Systems at Next-To-Next-To-Leading Order},
  author = {Chen Ji and Daniel R. Phillips},
  journal= {arXiv preprint arXiv:1212.1845},
  year   = {2013}
}

Comments

58 pages, 20 figures. Dedicated to Professor Henryk Witala at the occasion of his 60th birthday. Submitted in Few-Body Systems