English

Effective-range function methods for charged particle collisions

Nuclear Theory 2018-04-24 v2

Abstract

Different versions of the effective-range function method for charged particle collisions are studied and compared. In addition, a novel derivation of the standard effective-range function is presented from the analysis of Coulomb wave functions in the complex plane of the energy. The recently proposed effective-range function denoted as Δ\Delta_\ell [Phys. Rev. C 96, 034601 (2017)] and an earlier variant [Hamilton et al., Nucl. Phys. B 60, 443 (1973)] are related to the standard function. The potential interest of Δ\Delta_\ell for the study of low-energy cross sections and weakly bound states is discussed in the framework of the proton-proton 1S0{}^1S_0 collision. The resonant state of the proton-proton collision is successfully computed from the extrapolation of Δ\Delta_\ell instead of the standard function. It is shown that interpolating Δ\Delta_\ell can lead to useful extrapolation to negative energies, provided scattering data are known below one nuclear Rydberg energy (12.5 keV for the proton-proton system). This property is due to the connection between Δ\Delta_\ell and the effective-range function by Hamilton et al. that is discussed in detail. Nevertheless, such extrapolations to negative energies should be used with caution because Δ\Delta_\ell is not analytic at zero energy. The expected analytic properties of the main functions are verified in the complex energy plane by graphical color-based representations.

Keywords

Cite

@article{arxiv.1801.08980,
  title  = {Effective-range function methods for charged particle collisions},
  author = {David Gaspard and Jean-Marc Sparenberg},
  journal= {arXiv preprint arXiv:1801.08980},
  year   = {2018}
}

Comments

17 pages, 11 figures, 46 references; typos fixed