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首页> 外文期刊>Journal of Physics, B. Atomic, Molecular and Optical Physics: An Institute of Physics Journal >Excitation energies, radiative and autoionization rates, dielectronic satellite lines and dielectronic recombination rates for excited states of Mg-like W from Na-like W
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Excitation energies, radiative and autoionization rates, dielectronic satellite lines and dielectronic recombination rates for excited states of Mg-like W from Na-like W

机译:像Na一样的W的Mg样W的激发态的激发能,辐射和自电离率,双电子卫星线和双电子复合率

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Energy levels, radiative transition probabilities and autoionization rates for 1s~22s~22p~63l′nl (n = 3-13, l≤n-1), 1s~22s~22p~64l′nl (n = 4-7, 1≤n-1) and 1s~22s~22p~53l′3l″nl (n = 3-4,1≤n-1) states in Mg-like tungsten (W~(62+)) are calculated using the Hartree-Fock-relativistic method (COWAN code), the multiconfiguration relativistic Hebrew University Lawrence Atomic Code (HULLAC code) and the relativistic many-body perturbation theory method (RMBPT code). Autoionizing levels above the thresholds 1 s~22s~22p~63l and 1s~22s~22p~64l are considered. Branching ratios relative to the first threshold and intensity factors are calculated for satellite lines, and dielectronic recombination (DR) rate coefficients are determined for the first excited odd- and even-parity states. It is shown that the contribution of the highly excited states is very important for the calculation of total DR rates. Contributions to DR rate coefficients from the excited 1s~22s~22p~63l′nl states with n≥14 and 1s~22s~22p~64l′nl states with n≥8 and additionally from core-excited 1s~22s~22p~53l′3l″nl states with n≥5 are estimated by extrapolation of all atomic parameters. The orbital angular momentum quantum number l distribution of the rate coefficients shows two peaks at l = 2 and l = 5. The total DR rate coefficient is derived as a function of electron temperature. The dielectronic satellite spectra of W~(62+) are important for L-shell diagnostic of very high-temperature laboratory plasmas such as future ITER plasmas.
机译:1s〜22s〜22p〜63l'nl(n = 3-13,l≤n-1),1s〜22s〜22p〜64p'64l'nl(n = 4-7,1)的能级,辐射跃迁几率和自电离率≤n-1)和1s〜22s〜22p〜53l'3l''nl(n =3-4,1≤n-1)态的Mg类钨(W〜(62+))使用Hartree- Fock-相对论方法(COWAN代码),多配置相对论希伯来大学劳伦斯原子代码(HULLAC代码)和相对论多体摄动理论方法(RMBPT代码)。考虑超过阈值1 s〜22s〜22p〜63l和1s〜22s〜22p〜64l的自电离水平。为卫星线路计算相对于第一阈值和强度因子的分支比,并为第一激发的奇偶校验状态确定双电子复合(DR)速率系数。结果表明,高激发态的贡献对于总DR速率的计算非常重要。 n≥14的1s〜22s〜22p〜63l'nl激发态和n≥8的1s〜22s〜22p〜64l'nl态以及磁心激发的1s〜22s〜22p〜53l对DR速率系数的贡献n≥5的'3l''nl状态通过所有原子参数的外推来估计。速率系数的轨道角动量量子数l分布在l = 2和l = 5处显示两个峰值。总DR速率系数是电子温度的函数。 W〜(62+)的双电子卫星光谱对于非常高温的实验室等离子体(例如未来的ITER等离子体)的L壳诊断非常重要。

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