English

Direct Boundary Matching: A Bound-State Technique for Nuclear Scattering with Lagrange-Legendre Functions

Nuclear Theory 2025-12-09 v1

Abstract

I present a direct boundary matching method (DBMM) for solving nuclear scattering problems using Lagrange-Legendre basis functions. This approach belongs to the family of bound-state techniques for the continuum, reformulating scattering problems into a localized, square-integrable (L2L^2) representation. The key feature is the direct incorporation of the outgoing wave boundary condition into the last row of the matrix equation, eliminating the need for Bloch operators and two-step matching procedures required in traditional R-matrix methods. Unlike the complex scaling method that rotates coordinates into the complex plane, DBMM operates entirely in real coordinate space. The formalism is extended to coupled-channel problems, where the wave function decomposition naturally leads to an effective source potential that distinguishes between the entrance channel and other channels. Benchmark calculations for p~+~12^{12}C scattering demonstrate excellent agreement with the Numerov integration method.

Keywords

Cite

@article{arxiv.2512.07111,
  title  = {Direct Boundary Matching: A Bound-State Technique for Nuclear Scattering with Lagrange-Legendre Functions},
  author = {Jin Lei},
  journal= {arXiv preprint arXiv:2512.07111},
  year   = {2025}
}
R2 v1 2026-07-01T08:14:07.553Z