Examination of static fission properties of \(^{236}\)U and \(^{233}\)Th using Cassinian oval parametrization within the macroscopic–microscopic approach

IF 2.6 3区 物理与天体物理 Q2 PHYSICS, NUCLEAR The European Physical Journal A Pub Date : 2024-08-02 DOI:10.1140/epja/s10050-024-01381-9
P. Jachimowicz, R. Capote, M. Kowal
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Abstract

We have conducted a thorough analysis of the potential energy surfaces (PES) in \(^{236}\)U and \(^{233}\)Th using the Cassini-ovals parameterization within the macro–micro approach. We employed the state-of-the-art immersion water flow (IWF) method to study the saddles on four-dimensional energy grids encompassing reflection-asymmetric shapes. For \(^{233}\)Th, we computed the adiabatic potential energy surfaces by minimizing configurations with one blocked neutron within ten levels below and above the Fermi level. Our results show satisfactory agreement with empirical and experimental estimates for both nuclei, specifically regarding the first and second fission barriers. This suggests that our method holds promise in efficiently describing non-compact shapes while reducing the dimensionality of the space without sacrificing accuracy. Interestingly, employing Cassinian oval parameterization fails to reveal a pronounced, hyper-deformed third minimum in the potential energy landscape. Instead, only a shallow third minimum is observed for \(^{233}\)Th, while in \(^{236}\)U, this minimum ultimately vanishes. This finding holds significant importance when considering the modeling of fission cross-sections.

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利用宏观-微观方法中的卡西尼椭圆参数化研究 $$^{236}$ U 和 $$^{233}$ Th 的静态裂变特性
我们采用宏观-微观方法中的卡西尼-ovals参数化,对\(^{236}\)U 和\(^{233}\)Th 的势能面(PES)进行了深入分析。我们采用了最先进的浸入式水流(IWF)方法,在包含反射不对称形状的四维能量网格上研究鞍座。对于 \(^{233}\)Th ,我们通过最小化费米水平以下和以上十个水平内有一个受阻中子的构型来计算绝热势能面。我们的结果表明,对于这两个原子核,特别是在第一和第二裂变势垒方面,与经验和实验估计值的一致性令人满意。这表明我们的方法有望有效地描述非紧凑形状,同时在不牺牲精度的情况下降低空间维度。有趣的是,采用卡西尼椭圆参数化方法未能在势能景观中发现明显的超变形第三最小值。相反,在 \(^{233}\)Th 中只观察到一个浅层的第三最小值,而在\(^{236}\)U 中,这个最小值最终消失了。这一发现对于裂变截面的建模具有重要意义。
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来源期刊
The European Physical Journal A
The European Physical Journal A 物理-物理:核物理
CiteScore
5.00
自引率
18.50%
发文量
216
审稿时长
3-8 weeks
期刊介绍: Hadron Physics Hadron Structure Hadron Spectroscopy Hadronic and Electroweak Interactions of Hadrons Nonperturbative Approaches to QCD Phenomenological Approaches to Hadron Physics Nuclear and Quark Matter Heavy-Ion Collisions Phase Diagram of the Strong Interaction Hard Probes Quark-Gluon Plasma and Hadronic Matter Relativistic Transport and Hydrodynamics Compact Stars Nuclear Physics Nuclear Structure and Reactions Few-Body Systems Radioactive Beams Electroweak Interactions Nuclear Astrophysics Article Categories Letters (Open Access) Regular Articles New Tools and Techniques Reviews.
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