论文标题

$^{116} $ cd($^{20} $ ne,$^{20} $ F)$^{20} $^{116} $在306 MEV处电荷交换反应的多通道实验和理论约束。

Multi-channel experimental and theoretical constraints for the $^{116}$Cd($^{20}$Ne,$^{20}$F)$^{116}$In charge exchange reaction at 306 MeV

论文作者

Burrello, S., Calabrese, S., Cappuzzello, F., Carbone, D., Cavallaro, M., Colonna, M., Lay, J. A., Lenske, H., Agodi, C., Ferreira, J. L., Firat, S., Hacisalihoglu, A., La Fauci, L., Spatafora, A., Acosta, L., Bellone, J. I., Borello-Lewin, T., Boztosun, I., Brischetto, G. A., Calvo, D., Chávez-Lomelí, E. R., Ciraldo, I., Cutuli, M., Delaunay, F., Finocchiaro, P., Fisichella, M., Foti, A., Iazzi, F., Lanzalone, G., Linares, R., Lubian, J., Moralles, M., Oliveira, J. R. B., Pakou, A., Pandola, L., Petrascu, H., Pinna, F., Russo, G., Sgouros, O., Solakci, S. O., Soukeras, V., Souliotis, G., Torresi, D., Tudisco, S., Yildirin, A., Zagatto, V. A. B.

论文摘要

电荷交换(CE)反应为激发核异位模式提供了一个主要的机会,从而提供了有关培养基中核相互作用的线索。此外,事实证明,双重电荷交换(DCE)反应是访问与双β-末期过程有关的核过渡矩阵元素(NME)的诱人工具。通过多频道实验分析和$^{116} $ cd($^{20} $ ne,$^{20} $ f)$^{116} $在306 MEV处的反应中的$^{20} $ ne,$^{20} $^{116} $,我们的目标是从实验横截面中删除与竞争机构的贡献和更高的序列相关的方法,并在第二或更高的方面进行了序列,并在第二个MEV中进行了更高的贡献,并在第二个MEV中进行了贡献,并在第二个MEV中进行了贡献,并在第二个MEV中进行了差异或更高的顺序。我们使用Magnex大型接受磁性光谱仪来检测弹性 +非弹性,单蛋白转移和SCE通道的激发能光谱和绝对横截面,以检测弹出物。对于前两个通道,我们还提取了实验横截面角分布。将实验数据与通过执行两步扭曲的波出生近似和耦合反应通道计算获得的理论预测进行了比较。我们采用光谱振幅来用于在大规模壳模型方法中得出的单粒子跃迁,以及对初始状态和最终状态相互作用进行建模的不同光势。本研究大大减轻了这些复杂反应机制描述中可能存在的模型依赖性,这要归功于几个通道的再现。特别是,我们的工作表明,两步转移机制对$^{116} $ cd的总横截面产生了无可忽略的贡献($^{20} $ ne,$^{20} $ f)$ f)$ f)$^{116} $在反应频道中,尽管仍然缺少相关的分数,但在此不属于直接的机械,这是不可接受的。

Charge exchange (CE) reactions offer a major opportunity to excite nuclear isovector modes, providing clues about the nuclear interaction in the medium. Moreover, double charge exchange (DCE) reactions are proving to be a tempting tool to access nuclear transition matrix elements (NME) related to double beta-decay processes. Through a multi-channel experimental analysis and a consistent theoretical approach of the $^{116}$Cd($^{20}$Ne,$^{20}$F)$^{116}$In single charge exchange (SCE) reaction at 306 MeV, we aim at disentangling from the experimental cross section the contribution of the competing mechanisms, associated with second or higher order sequential transfer and inelastic processes. We measured excitation energy spectra and absolute cross sections for elastic + inelastic, one-proton transfer and SCE channels, using the MAGNEX large acceptance magnetic spectrometer to detect the ejectiles. For the first two channels, we also extracted the experimental cross section angular distributions. The experimental data are compared with theoretical predictions obtained by performing two-step distorted wave Born approximation and coupled reaction channel calculations. We employ spectroscopic amplitudes for single-particle transitions derived within a large-scale shell model approach and different optical potentials for modeling the initial and the final state interactions. The present study significantly mitigates the possible model dependence existing in the description of these complex reaction mechanisms, thanks to the reproduction of several channels at once. In particular, our work demonstrates that the two-step transfer mechanisms produce a non negligible contribution to the total cross section of the $^{116}$Cd($^{20}$Ne,$^{20}$F)$^{116}$In reaction channel, although a relevant fraction is still missing, being ascribable to the direct SCE mechanism, which is not addressed here.

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