论文标题

光学模型的紫外线抑制和非局部性的核能核散射电位

Ultraviolet suppression and nonlocality in optical model potentials for nucleon-nucleus scattering

论文作者

Arellano, H. F., Blanchon, G.

论文摘要

我们研究了核定核散射的光学模型电位的高动量成分及其在坐标空间中非本地结构上的发病率的作用。该研究涵盖了闭合壳核,质量数在$ 4 \ leq a \ leq 208 $的范围内,用于从数十MEV到1 GEV的核能能量。为此,使用密度依赖性的外壳$ g $矩阵计算了微观光电位,并基于Argonne $ v_ {18} $以及Chiral 2 $ n $ force to to to to to to to-next to-next to-next to-next to-next to-next to do-Leading Order。我们确认,光学潜在的高摩门贡献的逐渐抑制会导致坐标空间截然不同,所有这些都构成了相同的散射可观察到的。我们推断出该过程的目标质量数和能量的功能,最小截止动量$ Q $,从而滤除了潜力无关的紫外线成分。我们发现,当将紫外线抑制应用于Perey-Buck非局部电位或局部木材势势时,它们也会导致非局部性的外观与动量空间中从微观模型获得的外观相似。我们检查了横向非局部性,数量,使任何潜力的内在非局部性都具有可比性。我们得出的结论是,对替代电势的非本地特征的有意义的比较需要抑制其紫外线成分。

We investigate the role of high momentum components of optical model potentials for nucleon-nucleus scattering and its incidence on their nonlocal structure in coordinate space. The study covers closed-shell nuclei with mass number in the range $4\leq A\leq 208$, for nucleon energies from tens of MeV up to 1 GeV. To this purpose microscopic optical potentials are calculated using density-dependent off-shell $g$ matrices in Brueckner-Hartree-Fock approximation and based on Argonne $v_{18}$ as well as chiral 2$N$ force up to next-to-next-to-next-to-leading order. We confirm that the gradual suppression of high-momentum contributions of the optical potential results in quite different coordinate-space counterparts, all of them accounting for the same scattering observables. We infer a minimum cutoff momentum $Q$, function of the target mass number and energy of the process, that filters out irrelevant ultraviolet components of the potential. We find that when ultraviolet suppression is applied to Perey-Buck nonlocal potential or local Woods-Saxon potentials, they also result nonlocal with similar appearance to those obtained from microscopic models in momentum space. We examine the transversal nonlocality, quantity that makes comparable the intrinsic nonlocality of any potential regardless of its representation. We conclude that meaningful comparisons of nonlocal features of alternative potentials require the suppression of their ultraviolet components.

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