Study of Electron Impact Excitation of Na-like Kr Ion for Impurity Seeding Experiment in Large Helical Device

IF 1.7 Q3 PHYSICS, ATOMIC, MOLECULAR & CHEMICAL Atoms Pub Date : 2023-11-05 DOI:10.3390/atoms11110142
Shivam Gupta, Tetsutarou Oishi, Izumi Murakami
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Abstract

In this work, a krypton gas impurity seeding experiment was conducted in a Large Helical Device. Emission lines from the Na-like Kr ion in the extreme ultraviolet wavelength region, such as 22.00 nm, 17.89 nm, 16.51 nm, 15.99 nm, and 14.08 nm, respective to 2p63p(2P1/2o)−2p63s(2S1/2), 2p63p(2P3/2o)−2p63s(2S1/2), 2p63d(2D3/2)−2p63p(2P3/2o), 2p63d(2D5/2)−2p63p(2P3/2o), and 2p63d(2D3/2)−2p63p(2P1/2o) transitions, are observed. In order to generate a theoretical synthetic spectrum, an extensive calculation concerning the excitation of the Kr25+ ion through electron impact was performed for the development of a suitable plasma model. For this, the relativistic multiconfiguration Dirac–Hartree–Fock method was employed along with its extension to the relativistic configuration interaction method to compute the relativistic bound-state wave functions and excitation energies of the fine structure levels using the General Relativistic Atomic Structure Package-2018. In addition, another set of calculations was carried out utilizing the relativistic many-body perturbation theory and relativistic configuration interaction methods integrated within the Flexible Atomic Code. To investigate the reliability of our findings, the results of excitation energies, transition probabilities, and weighted oscillator strengths of different dipole-allowed transitions obtained from these different methods are presented and compared with the available data. Further, the detailed electron impact excitation cross-sections and their respective rate coefficients are obtained for various fine structure resolved transitions using the fully relativistic distorted wave method. Rate coefficients, calculated using the Flexible Atomic Code for population and de-population kinetic processes, are integrated into the collisional-radiative plasma model to generate a theoretical spectrum. Further, the emission lines observed from the Kr25+ ion in the impurity seeding experiment were compared with the present plasma model spectrum, demonstrating a noteworthy overall agreement between the measurement and the theoretical synthetic spectrum.
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大型螺旋装置中na类Kr离子杂质播种实验的电子冲击激发研究
本文在大型螺旋装置中进行了氪气杂质播种实验。在2p63p(2P1/2o)−2p63s(2S1/2)、2p63p(2P3/2o)−2p63s(2S1/2)、2p63d(2D3/2)−2p63p(2P3/2o)、2p63d(2D5/2)−2p63p(2P3/2o)、2p63d(2D3/2)−2p63p(2P3/2o)、2p63d(2D3/2)−2p63p(2P3/2o)、2p63d(2D3/2)−2p63p(2P3/2o)和2p63d(2D3/2)−2p63p(2P1/2o)的极紫外波段,分别观测到na - Kr离子在22.00 nm、17.89 nm、16.51 nm、15.99 nm和14.08 nm的发射谱线。为了生成理论合成谱,对Kr25+离子通过电子冲击激发进行了广泛的计算,以建立合适的等离子体模型。为此,利用广义相对论原子结构包-2018,采用相对论多组态Dirac-Hartree-Fock方法及其对相对论组态相互作用方法的扩展,计算了精细结构能级的相对论束缚态波函数和激发能。此外,利用柔性原子代码中集成的相对论多体微扰理论和相对论组态相互作用方法进行了另一组计算。为了研究我们发现的可靠性,我们给出了用这些不同方法得到的不同偶极允许跃迁的激发能、跃迁概率和加权振子强度的结果,并与现有数据进行了比较。利用完全相对论畸变波方法,得到了各种精细结构分辨跃迁的详细电子冲击激发截面和各自的速率系数。利用柔性原子代码计算的居群和去居群动力学过程的速率系数,被整合到碰撞-辐射等离子体模型中,以产生理论谱。此外,将Kr25+离子在杂质播种实验中观测到的发射谱线与目前的等离子体模型谱线进行了比较,结果表明,测量结果与理论合成谱线总体上是一致的。
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来源期刊
Atoms
Atoms Physics and Astronomy-Nuclear and High Energy Physics
CiteScore
2.70
自引率
22.20%
发文量
128
审稿时长
8 weeks
期刊介绍: Atoms (ISSN 2218-2004) is an international and cross-disciplinary scholarly journal of scientific studies related to all aspects of the atom. It publishes reviews, regular research papers, and communications; there is no restriction on the length of the papers. Our aim is to encourage scientists to publish their experimental and theoretical research in as much detail as possible. Full experimental and/or methodical details must be provided for research articles. There are, in addition, unique features of this journal: -manuscripts regarding research proposals and research ideas will be particularly welcomed. -computed data, program listings, and files regarding the full details of the experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material. Scopes: -experimental and theoretical atomic, molecular, and nuclear physics, chemical physics -the study of atoms, molecules, nuclei and their interactions and constituents (protons, neutrons, and electrons) -quantum theory, applications and foundations -microparticles, clusters -exotic systems (muons, quarks, anti-matter) -atomic, molecular, and nuclear spectroscopy and collisions -nuclear energy (fusion and fission), radioactive decay -nuclear magnetic resonance (NMR) and electron spin resonance (ESR), hyperfine interactions -orbitals, valence and bonding behavior -atomic and molecular properties (energy levels, radiative properties, magnetic moments, collisional data) and photon interactions
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