论文标题

相对论Brueckner-Hartree-Fock模型的核对称能量

The nuclear symmetry energy from relativistic Brueckner-Hartree-Fock model

论文作者

Wang, Chencan, Hu, Jinniu, Zhang, Ying, Shen, Hong

论文摘要

核物质中对称能的微观机制是在相对论的Brueckner-Hartree-fock(RBHF)模型的框架中,具有高精度逼真的核电位,PVCDBONN A.分解了动能和对称能量的动力学和潜在的贡献。它们是由核子自我强度明确表达的,它们是通过将RBHF模型的$ g $ amatrices投射到Lorentz协变量术语中获得的。通过比较RBHF模型的结果以及Hartree-Fock和相对论Hartree-Fock模型的结果,讨论了对称能量中核子培养基对对称能量中核子的影响的影响。发现包括核子的自能源包括对单核介质波的效应,在很大程度上为对称能提供了积极的贡献,而{核培养基对核子核苷相互作用的影响,即有效的$ g $ - atmatrices产生负贡献}。张量力在密度周围的对称能量中起着至关重要的作用。核子核子相互作用的标量和矢量协变量振幅主导了对称能的潜在成分。此外,从RBHF模型中提取了光势中的等轴和等级术语。等效部分与分析全球光学潜力的结果一致,而异载体一个人由于相对论效应在较高的入射能量上具有明显的差异。

The microscopic mechanisms of the symmetry energy in nuclear matter are investigated in the framework of the relativistic Brueckner-Hartree-Fock (RBHF) model with a high-precision realistic nuclear potential, pvCDBonn A. The kinetic energy and potential contributions to symmetry energy are decomposed. They are explicitly expressed by the nucleon self-energies, which are obtained through projecting the $G$-matrices from the RBHF model into the terms of Lorentz covariants. The nuclear medium effects on the nucleon self-energy and nucleon-nucleon interaction in symmetry energy are discussed by comparing the results from the RBHF model and those from Hartree-Fock and relativistic Hartree-Fock models. It is found that the nucleon self-energy including the nuclear medium effect on the single-nucleon wave function provides a largely positive contribution to the symmetry energy, while {the nuclear medium effect on the nucleon-nucleon interaction, i.e., the effective $G$-matrices generates the negative contribution}. The tensor force plays an essential role in the symmetry energy around the density. The scalar and vector covariant amplitudes of nucleon-nucleon interaction dominate the potential component of the symmetry energy. Furthermore, the isoscalar and isovector terms in the optical potential are extracted from the RBHF model. The isoscalar part is consistent with the results from the analysis of global optical potential, while the isovector one has obvious differences at higher incident energy due to the relativistic effect.

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