English

Energy-independent optical $^{1}S_{0}NN$ potential from Marchenko equation

Quantum Physics 2021-07-07 v2 Nuclear Theory

Abstract

We present a new algebraic method for solving the inverse problem of quantum scattering theory based on the Marchenko theory. We applied a triangular wave set for the Marchenko equation kernel expansion in a separable form. The separable form allows a reduction of the Marchenko equation to a system of linear equations. For the zero orbital angular momentum, a linear expression of the kernel expansion coefficients is obtained in terms of the Fourier series coefficients of a function depending on the momentum qq and determined by the scattering data in the finite range of qq. It is shown that a Fourier series on a finite momentum range (0<q<π/h0<q<\pi/h) of a q(1S)q(1-S) function (SS is the scattering matrix) defines the potential function of the corresponding radial Schr\"odinger equation with hh-step accuracy. A numerical algorithm is developed for the reconstruction of the optical potential from scattering data. The developed procedure is applied to analyze the 1S0NN^{1}S_{0}NN data up to 3 GeV. It is shown that these data are described by optical energy-independent partial potential.

Keywords

Cite

@article{arxiv.2104.03939,
  title  = {Energy-independent optical $^{1}S_{0}NN$ potential from Marchenko equation},
  author = {N. A. Khokhlov and L. I. Studenikina},
  journal= {arXiv preprint arXiv:2104.03939},
  year   = {2021}
}

Comments

6 pages, 4 figures. arXiv admin note: text overlap with arXiv:2102.01464