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首页> 外文期刊>The Astrophysical journal >INNER-SHELL ABSORPTION LINES OF Fe VI-Fe XVI: A MANY-BODY PERTURBATION THEORY APPROACH
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INNER-SHELL ABSORPTION LINES OF Fe VI-Fe XVI: A MANY-BODY PERTURBATION THEORY APPROACH

机译:Fe VI-Fe XVI的壳内吸收线:一种多体扰动理论方法

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摘要

We provide improved atomic calculation of wavelengths, oscillator strengths, and autoionization rates relevant to the 2 → 3 inner-shell transitions of Fe VI-XVI, the so-called Fe M-shell unresolved transition array (UTA). A second-order many-body perturbation theory is employed to obtain accurate transition wavelengths, which are systematically larger than previous theoretical results by 15-45 mA. For a few transitions of Fe XVI and Fe XV for which laboratory measurements exist, our new wavelengths are accurate to within a few mA. Using these new calculations, the apparent discrepancy in the velocities between the Fe M-shell UTA and other highly ionized absorption lines in the outflow of NGC 3783 disappears. The oscillator strengths in our new calculation agree well with the previous theoretical data, while the new autoionization rates are significantly larger, especially for lower charge states. We attribute this discrepancy to the missing autoionization channels in the previous calculation. The increased autoionization rates may slightly affect the column density analysis of the Fe M-shell UTA for sources with high column density and very low turbulent broadening. The complete set of atomic data is provided as an electronic table.
机译:我们提供了与Fe VI-XVI的2→3内壳过渡(所谓的Fe M壳未解析过渡阵列(UTA))相关的波长,振荡器强度和自电离速率的改进原子计算。使用二阶多体摄动理论来获得准确的跃迁波长,该跃迁波长系统地比以前的理论结果大15-45 mA。对于存在实验室测量值的Fe XVI和Fe XV的一些跃迁,我们的新波长精确到几mA之内。使用这些新的计算,在NGC 3783流出时,Fe M壳UTA与其他高度电离的吸收线之间的速度差异明显消失了。在我们的新计算中,振荡器的强度与先前的理论数据非常吻合,而新的自电离速率则明显更大,尤其是对于较低电荷状态。我们将此差异归因于先前计算中缺少的自动电离通道。对于具有高柱密度和非常低湍流展宽的离子源,增加的自电离速率可能会稍微影响Fe M-shell UTA的柱密度分析。完整的原子数据集作为电子表提供。

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