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Nonlocal nucleon-nucleus interactions in (d, p) reactions: Role of the deuteron D state

机译:(d,p)反应中的非局部核仁核相互作用:氘代d州的作用

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摘要

Theoretical models of the (d,p) reaction are exploited for both nuclear astrophysics and spectroscopic studies in nuclear physics. Usually, these reaction models use local optical model potentials to describe the nucleonand deuteron-target interactions.Within such a framework, the importance of the deuteron D state in low-energy reactions is normally associated with spin observables and tensor polarization effects, with very minimal influence on differential cross sections. In contrast, recent work that includes the inherent nonlocality of the nucleon optical model potentials in the Johnson-Tandy adiabatic-model description of the (d,p) transition amplitude, which accounts for deuteron break-up effects, shows sensitivity of the reaction to the large n - p relative momentum content of the deuteron wave function. The dominance of the deuteron D-state component at such high momenta leads to significant sensitivity of calculated (d,p) cross sections and deduced spectroscopic factors to the choice of deuteron wave function [Phys. Rev. Lett. 117, 162502 (2016)].We present details of the Johnson-Tandy adiabatic model of the (d,p) transfer reaction generalized to include the deuteron D state in the presence of nonlocal nucleon-target interactions. We present exact calculations in this model and compare these to approximate (leading-order) solutions. The latter, approximate solutions can be interpreted in terms of local optical potentials, but evaluated at a shifted value of the energy in the nucleon-target system. This energy shift is increased when including theD-state contribution.We also study the expected dependence of theD-state effects on the separation energy and orbital angular momentum of the transferred nucleon. Their influence on the spectroscopic information extracted from (d,p) reactions is quantified for a particular case of astrophysical significance.
机译:(D,P)反应的理论模型被利用核物理学的核天体物理学和光谱研究。通常,这些反应模型使用局部光学模型电位来描述核心氘 - 目标相互作用。在这种框架中,氘代D状态在低能量反应中的重要性通常与旋转可观察到和张量偏振效应相关,具有非常微量的对差动截面的影响。相比之下,最近的工作包括尼古斯光模型的核子光学模型电位的固有非植物(D,P)转变幅度的核心模型描述,其占氘核分解效应的估计,显示了对反应的敏感性氘波函数的大N - P相对动量含量。 Deuteron D态成分在这种高动态下的优势导致计算的(D,P)横截面和推导的光谱因素的显着灵敏度,以选择氘代波函数[物理。 rev. lett。 117,162502(2016)]。我们展示了(D,P)转移反应的约翰逊 - 汤达绝热模型的细节,广义地包括在非识别核靶相互作用存在下包括氘代D状态。我们在此模型中提出了精确的计算,并将其与近似(领先订单)解决方案进行比较。后者,近似解决方案可以在局部光学电位方面解释,但是在核心靶系统中的能量的偏移值下评估。当包括有关国家的贡献时,这种能量偏移增加。我们还研究了对应核心对转移核仁的分离能量和轨道角动量的预期依赖性。它们对从(D,P)反应中提取的光谱信息的影响被定量为特定的天体物理意义。

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  • 来源
    《Physical Review C》 |2017年第2017期|024603.1-024603.10|共10页
  • 作者单位

    Department of Physics Faculty of Engineering and Physical Sciences University of Surrey Guildford Surrey GU2 7XH United Kingdom;

    Department of Physics Faculty of Engineering and Physical Sciences University of Surrey Guildford Surrey GU2 7XH United Kingdom;

    Department of Physics Faculty of Engineering and Physical Sciences University of Surrey Guildford Surrey GU2 7XH United Kingdom;

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