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Effects of screening on the energies and transition parameters of Fe XX of fusion interest

机译:筛选对融合兴趣Fe XX的能量和转变参数的影响

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We present results of accurate fully-relativistic calculations of transition energies and oscillator strengths among the levels of the 2s(2)2p(3), 2s2p(4), and 2p(5) configurations of N-like iron under dense plasma conditions, i.e., 19 times ionized atom of iron. Such highly-ionized species can exist in very hot plasmas, such as in cores of magneticfusion reactors, in X-ray free electron laser experiments and in imploaded targets of inertially-confined fusion (ICF) experiments. The ion sphere potential experienced by the electron is parameterized by temperature and electron density. Two independent atomic structure methods, namely the multiconfiguration Dirac-Hartree-Fock method and the flexible atomic code (FAC) representing the plasma shieldings with an average-atom ion-sphere (AAIS) potential and a uniform electron gas model (UEGM) potential, have been developed. The plasma-free values obtained in this work compare well with existing data from literature. Our results show that the levels of all studied configurations shift with the increase in plasma electron density, the shift of the 2s(2)2p(3) energies being negative and the shift of 2s2p(4) and 2p(5) positive. Moreover, the energy shift becomes more sensitive to the plasma electron density when the plasma electron temperature is lower. The oscillator strengths of the lines increase with the increase of electron density for a given temperature. The present results should be useful in fusion related plasmas and fundamental physics.
机译:我们在致密等离子体条件下,2S(2)2P(3),2S2P(4S2P(4),2P(5)个型电烙率的2S(2)2P(3),2S2P(4)和2P(5)个配置的水平的精确完全相对论的转换能量和振荡器强度的结果。即,19次铁的离子原子。这种高电离物质可以在非常热的等离子体中存在,例如在X射线游离电子激光实验中的磁性耗电反应器中的核心,并且在易用的惯性融合(ICF)实验中的促进目标中。通过温度和电子密度参数化电子经历的离子球电位。两个独立的原子结构方法,即多组配置Digac-Hartree-Fock方法和柔性原子代码(FAC),其代表具有平均原子离子球(AAIS)电位的等离子体屏蔽和均匀的电子气体模型(UEGM)电位,已经开发了。在本工作中获得的等离子体值与来自文献的现有数据相比很好。我们的结果表明,所有研究的配置的水平随等离子体电子密度的增加而转变,2S(2)2P(3)能量的偏移为负,2S2P(4)和2P(5)正的偏移。此外,当等离子体电子温度较低时,能量偏移对等离子体电子密度变得更敏感。随着给定温度的电子密度的增加,线的振荡器强度增加。目前的结果应在融合相关的等离子体和基本物理学中有用。

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