Temperature evolution of the nuclear shell structure and the dynamical nucleon effective mass

H. Wibowo, E. Litvinova, Yinu Zhang, P. Finelli
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引用次数: 1

Abstract

We study the fermionic Matsubara Green functions in medium-mass nuclei at finite temperature. The single-fermion Dyson equation with the dynamical kernel of the particle-vibration-coupling (PVC) origin is formulated and solved in the basis of Dirac spinors, which minimize the grand canonical potential with the meson-nucleon covariant energy density functional. The PVC correlations beyond mean field are taken into account in the leading approximation for the energy-dependent self-energy, and the full solution of the finite-temperature Dyson equation is obtained for the fermionic propagators. Within this approach, we investigate the fragmentation of the single-particle states and its evolution with temperature for the nuclear systems $^{56,68}$Ni and $^{56}$Fe relevant for the core-collapse supernova. The energy-dependent, or dynamical, nucleon effective mass is extracted from the PVC self-energy at various temperatures.
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核壳结构的温度演化与动态核子有效质量
研究了有限温度下中质量原子核中的费米子Matsubara Green函数。以介子-核子协变能量密度泛函的狄拉克旋量为基础,建立并求解了具有粒子-振动-耦合起源动力学核的单费米子戴森方程。在能量依赖自能的前导近似中考虑了平均场以外的PVC相关,得到了费米子传播子有限温度戴森方程的全解。在这种方法下,我们研究了与核心坍缩超新星相关的$^{56,68}$Ni和$^{56}$Fe核系统的单粒子态的分裂及其随温度的演化。在不同温度下,从PVC自能中提取能量依赖的或动态的核子有效质量。
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