English

Non-Perturbative Four-Point Scattering from First-Quantized Relativistic JWKB

High Energy Physics - Theory 2016-04-18 v1

Abstract

We apply the quantum mechanical (first-quantized) JWKB approximation to a two-body path integral describing the near-forward scattering of two relativistic, heavy, non-identical, scalar particles in DD spacetime dimensions. In contrast to the loop expansion, in D=4D = 4 this gives a strong-coupling expansion, and in D=3D = 3 a non-perturbative weak-coupling expansion. When the interaction is mediated by massless quanta with spin NN, we obtain explicit, relativistic results for the scattering amplitude when N=0N = 0, 11 and 22. In D=4D = 4 we find a Regge trajectory function that agrees with the usual quantum mechanical spectrum. We also find an exponentiated infrared divergence that becomes a pure phase factor when the Mandelstam invariants ss and tt are inside of the physical scattering region. In D=3D = 3 we find a singularity whose position along the ss axis is dependent on tt. When the interaction is mediated by a heavy scalar with mass MM, in D=3D = 3 we find an all-order scattering amplitude where the multi-mass branch points t=(L+1)2M2t = (L + 1)^{2}M^{2} appear as Regge poles.

Keywords

Cite

@article{arxiv.1604.04450,
  title  = {Non-Perturbative Four-Point Scattering from First-Quantized Relativistic JWKB},
  author = {M. E. Irizarry-Gelpí and W. Siegel},
  journal= {arXiv preprint arXiv:1604.04450},
  year   = {2016}
}

Comments

40 pages, 2 figures

R2 v1 2026-06-22T13:33:13.240Z