arXiv:1710.06352·v3·Nuclear Theory
Isospin-forbidden electric-dipole capture and the Li reaction
Abstract
At the long-wavelength approximation, transitions are forbidden between isospin-zero states. Hence radiative capture is strongly hindered in reactions involving nuclei but the astrophysical factor may remain comparable to, or larger than, the one. Theoretical expressions of the isoscalar and isovector contributions to capture are analyzed in microscopic and three-body approaches in the context of the Li reaction. The lowest non-vanishing terms of the operators are derived and the dominant contributions to matrix elements are discussed. The astrophysical factor computed with some of these contributions in a three-body model is in agreement with the recent low-energy experimental data of the LUNA collaboration. This confirms that a correct treatment of the isovector transitions involving small isospin-one admixtures in the wave functions should be able to provide an explanation of the data without adjustable parameter. The exact-masses prescription which is often used to avoid the disappearance of the matrix element in potential models is not founded at the microscopic level and should not be used for such reactions. The importance of capture components from an initial scattering wave is also discussed.
Comments: 24 pages, 1 table, 2 figures, Figures and text updated