Connecting ground-state properties of 6Li to each other and to scattering data
Journal article, 2026

We examine the relationship between the asymptotic normalization coefficient (ANC) of 6Li and other low-energy observables in the alpha-deuteron system. Our analysis uses a set of calculations carried out within the ab initio no core shell model with continuum (NCSMC) using a variety of inter-nucleon interactions and basis sizes, and yielding 6Li deuteron separation energies between 1.3 and 1.8 MeV (Hebborn et al 2022 Phys. Rev. Lett. 129 042503). These NCSMC calculations show that the square of the ANC is strongly correlated with the separation energy over this range. In this work, we investigate the origin of this correlation using the phenomenological R-matrix, a single-channel potential and a perturbative approach. We show that this correlation occurs because the depth of the alpha-deuteron central potential changes by only a small relative amount as the separation energy varies. We then investigate if the ANC can be accurately extracted from alpha-deuteron phase shifts in an ideal case in which low-energy data are available and there are no experimental errors. We find that both R-matrix and Coulomb-modified effective-range theory (CM-ERE) yield extracted ANCs close to, although not exactly equal to, the NCSMC value, provided the extrapolation is constrained by the known position of the bound-state pole and at least three terms are included in the fit function. The R-matrix approach converges faster than the CM-ERE as the number of parameters increases and is also more robust against the inclusion of low-energy and high-energy phase shift data. Finally, our study also shows that a naive quantification of uncertainties by comparing different truncations used in both theories is not accurate, and suggests the accuracy of ANCs extracted from phase shift data needs further investigation.

effective range expansion

asymptotic normalization constant

nuclear reaction

<italic>R</italic>-matrix

Author

C. Hebborn

University Paris-Saclay

Michigan State University

C. R. Brune

Ohio University

Daniel Phillips

Chalmers, Physics, Subatomic, High Energy and Plasma Physics

Ohio University

Journal of Physics G: Nuclear and Particle Physics

0954-3899 (ISSN) 13616471 (eISSN)

Vol. 53 2 025101

Subject Categories (SSIF 2025)

Subatomic Physics

DOI

10.1088/1361-6471/ae38fc

More information

Latest update

2/24/2026