English

Ab initio framework for nuclear scattering and reactions induced by light projectiles

Nuclear Theory 2020-12-02 v1

Abstract

A quantitative and predictive microscopic theoretical framework that can describe reactions induced by α\alpha particles (4^4He nuclei) and heavier projectiles is currently lacking. Such a framework would contribute to reducing uncertainty in the modeling of stellar evolution and nucleosynthesis and provide the basis for achieving a comprehensive understanding of the phenomenon of nuclear clustering (the organization of protons and neutrons into distinct substructures within a nucleus). We have developed an efficient and general configuration-interaction framework for the description of low-energy reactions and clustering in light nuclei. The new formalism takes full advantage of powerful second-quantization techniques, enabling the description of α\alpha-α\alpha scattering and an exploration of clustering in the exotic 12^{12}Be nucleus. We find that the 4^4He(α\alpha, α\alpha)4^4He differential cross section computed with non-locally regulated chiral interactions is in good agreement with experimental data. Our results for 12^{12}Be indicate the presence of strongly mixed helium-cluster states consistent with a molecular-like picture surviving far above the 6^6He+6^6He threshold, and reveal the strong influence of neutron decay in both the 12^{12}Be spectrum and in the 6^6He(6^6He,α\alpha)8^8He cross section. We expect that this approach will enable the description of helium burning cross sections and provide insight on how three-nucleon forces influence the emergence of clustering in nuclei.

Keywords

Cite

@article{arxiv.2012.00228,
  title  = {Ab initio framework for nuclear scattering and reactions induced by light projectiles},
  author = {Konstantinos Kravvaris and Sofia Quaglioni and Guillaume Hupin and Petr Navratil},
  journal= {arXiv preprint arXiv:2012.00228},
  year   = {2020}
}
R2 v1 2026-06-23T20:37:36.730Z