Abstract

Abstract The correspondence between the isoscalar monopole (IS0) transition strengths and $\alpha$ inelastic cross sections, the $B({\rm IS0})$–$(\alpha,\alpha')$ correspondence, is investigated for $^{24}$Mg($\alpha,\alpha'$) at 130 and 386 MeV. We adopt a microscopic coupled-channel reaction framework to link structural inputs, diagonal and transition densities, for $^{24}$Mg obtained with antisymmetrized molecular dynamics to the ($\alpha,\alpha'$) cross sections. We aim at clarifying how the $B({\rm IS0})$–$(\alpha,\alpha')$ correspondence is affected by the nuclear distortion, the in-medium modification to the nucleon–nucleon effective interaction in the scattering process, and the coupled-channel effect. It is found that these effects are significant and the explanation of the $B({\rm IS0})$–$(\alpha,\alpha')$ correspondence in the plane wave limit with the long-wavelength approximation, which is often used, makes no sense. Nevertheless, the $B({\rm IS0})$–$(\alpha,\alpha')$ correspondence tends to remain because of a strong constraint on the transition densities between the ground state and the $0^+$ excited states. The correspondence is found to hold at 386 MeV with an error of about 20%–30%, while it is seriously compromised at 130 MeV, mainly by the strong nuclear distortion. It is also found that when a $0^+$ state that has a different structure from a simple $\alpha$ cluster state is considered, the $B({\rm IS0})$–$(\alpha,\alpha')$ correspondence becomes less valid. For a quantitative discussion on the $\alpha$ clustering in $0^+$ excited states of nuclei, a microscopic description of both the structure and reaction parts will be necessary.

Highlights

  • The nuclear clustering structure, characterized by weakly-interacting subunits inside a nucleus, is one of the fundamental aspects of atomic nuclei

  • We demonstrate how the present MCC framework describes the experimental data for the α-24Mg elastic scattering and inelastic scattering to the 0+2 and 2+1 states at 130 and 386 MeV

  • To see the situation in the present case, we show in Table 2 the relative IS0 strength to that for the 0+2 state, B(IS0)i/B(IS0)2, calculated with antisymmetrized molecular dynamics (AMD) and the relative α inelastic cross sections,/(dσ2/dΩ), at 130 and 386 MeV, evaluated with plane-wave Born approximation (PWBA)-t, PWBA with the Melbourne g matrix (PWBA-g), and DWBA with the Melbourne g matrix (DWBA-g)

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Summary

Introduction

The nuclear clustering structure, characterized by weakly-interacting subunits inside a nucleus, is one of the fundamental aspects of atomic nuclei. [37, 38], the isoscalar monopole (IS0) operator induces a nodal excitation regarding the coordinate between the constituents of a nucleus, by which nuclear cluster states are strongly and selectively populated. As it is well known, in the plane wave limit with the long-wavelength approximation, the PW-LW limit, the transition matrix of the inelastic scattering of electron, (e, e′) scattering, contains the IS0 transition strengths of nuclei; see §2.1 below. Understanding the mechanism of the B(IS0)-(α, α′) correspondence for 24Mg reported in Ref. [39] is crucial for future studies on B(IS0) for various nuclei using experimental (α, α′) cross sections

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