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复动量格林函数方法对n-α散射研究
引用本文:王晓伟,郭建友.复动量格林函数方法对n-α散射研究[J].物理学报,2019,68(9):92101-092101.
作者姓名:王晓伟  郭建友
作者单位:安徽大学物理与材料科学学院, 合肥 230601
基金项目:国家自然科学基金(批准号:11575002)资助的课题.
摘    要:在复动量表象下引入格林函数,建立了复动量格林函数方法.把这种方法应用于n-α散射系统,计算其散射相移.提取n-α系统的共振态并研究共振态对能级密度、相移和散射截面的贡献.在不引入任何非物理参数的前提下,离散化薛定谔积分方程得到束缚态、共振态和连续谱.通过分析散射态物理量可以更好地理解共振态以及非共振连续谱态.在n-α系统中的成功应用,证明了该方法的正确性.

关 键 词:复动量格林函数  共振态  散射相移  截面
收稿时间:2018-12-13

Investigation of n-α scattering by combining complex momentum representation and Green's function
Wang Xiao-Wei,Guo Jian-You.Investigation of n-α scattering by combining complex momentum representation and Green's function[J].Acta Physica Sinica,2019,68(9):92101-092101.
Authors:Wang Xiao-Wei  Guo Jian-You
Institution:School of Physics and Materials Science, Anhui University, Hefei 230601, China
Abstract:Nuclear scattering is a very important physical phenomenon in which the resonance state plays an important role. In order to study the two-body system n-α scattering, Green's function is introduced under the complex momentum representation, so the complex momentum representation-Green's function approach is established. This method is used to study the elastic scattering of n-α system. By extracting the resonances, it is found that the contributions of resonances in continuum level density, phase shift, and cross section are more important. In the case without introducing any non-physical parameters, it is very helpful to understand the resonant states and the non-resonance continuum states by analyzing the data of scattering states. In this work, we mainly study the p-wave scattering with the orbital angular momentum l = 1, where P1/2 is a wide resonance state and P3/2 is narrow resonance state. The study shows that the sharp resonance peak of p-wave scattering gives rather broad distribution to the scattering phase shift and the cross section of the n-α system. By comparison, we can see that the theoretical calculation results and experimental data are in good consistence.
Keywords:complex momentum representation-Green's function  resonant states  scattering phase shift  cross section
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