论文标题

Gamow Shell模型描述Li同位素及其镜子合作伙伴

Gamow Shell Model description of Li isotopes and their mirror partners

论文作者

Mao, X., Rotureau, J., Nazarewicz, W., Michel, N., Betan, R. M. Id, Jaganathen, Y.

论文摘要

背景:接近粒子滴注线的弱结合和未结合的核是中子/质子过量极端的新核结构物理的实验室。对这些系统的全面描述需要一个开放的量子系统框架,该框架能够在平等基础上处理谐振和非谐振多体状态。目的:在这项工作中,我们构建了最小的复合能源构型相互作用方法来描述所选5 $ \ leq $ a $ \ leq $ 11核的结合能和光谱。方法:假设刚性$^4 $ HE CORE,我们采用复杂的能源游戏壳模型(GSM)。有效的汉密尔顿人,由核心木材 - 撒克逊核心的潜力和简化版本的源自素的含量与质量依赖性缩放的相互作用的简化版本在SP空间中进行了优化。为了对角度化汉密尔顿矩阵,我们采用了戴维森方法和密度矩阵重新归一化组技术。结果:我们优化的GSM Hamiltonian通过根平方(RMS)偏离160 KEV的实验,可以很好地再现结合能和光谱。由于该模型在用于预测未包含在拟合中的已知激发时的性能很好,因此它可以用作描述鲜为人知的状态的可靠工具。一个很好的例子是我们对一对未结合的镜子核$^{10} $ li-$^{10} $ n的预测,其中巨大的托马斯 - ehrman班次极大地改变了低能量激发的模式。结论:新模型将对光线滴注核的结构和反应方面进行全面研究。

Background: Weakly bound and unbound nuclei close to particle drip lines are laboratories of new nuclear structure physics at the extremes of neutron/proton excess. The comprehensive description of these systems requires an open quantum system framework that is capable of treating resonant and nonresonant many-body states on equal footing. Purpose: In this work, we construct the minimal complex-energy configuration interaction approach to describe binding energies and spectra of selected 5 $\leq$ A $\leq$ 11 nuclei. Method: We employ the complex-energy Gamow shell model (GSM) assuming a rigid $^4$He core. The effective Hamiltonian, consisting of a core-nucleon Woods-Saxon potential and a simplified version of the Furutani-Horiuchi-Tamagaki interaction with the mass-dependent scaling, is optimized in the sp space. To diagonalize the Hamiltonian matrix, we employ the Davidson method and the Density Matrix Renormalization Group technique. Results: Our optimized GSM Hamiltonian offers a good reproduction of binding energies and spectra with the root-mean-square (rms) deviation from experiment of 160 keV. Since the model performs well when used to predict known excitations that have not been included in the fit, it can serve as a reliable tool to describe poorly known states. A case in point is our prediction for the pair of unbound mirror nuclei $^{10}$Li-$^{10}$N in which a huge Thomas-Ehrman shift dramatically alters the pattern of low-energy excitations. Conclusion: The new model will enable comprehensive studies of structure and reactions aspects of light drip-line nuclei.

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