High-precision,reference-free measurements of \(2p \rightarrow 1s\) transitions in boron-like sulfur and argon

IF 1.5 4区 物理与天体物理 Q3 OPTICS
Louis Duval, Emily Lamour, Stéphane Macé, Jorge Machado, Marleen Maxton, Nancy Paul, Christophe Prigent, Martino Trassinelli, Paul Indelicato
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Abstract

We have measured several \(2p \rightarrow 1s\) transition energies in core-excited boron-like ions of sulfur and argon. The measurements are reference-free, with an accuracy of a few parts per million. The x-rays were produced by the plasma of an electron cyclotron resonance ion source and measured with a double-crystal x-ray spectrometer. The precision obtained for the measured \(1s 2s^2 2p^2~J - 1s^2 2s^2 2p~J'\) lines is \({\approx 3.8}\,{\hbox {ppm}}\) for sulfur and \({\approx 2.5}\,{\hbox {ppm}}\) for argon. The line energies are compared to relativistic atomic structure calculations performed with the mdfgme multi-configuration Dirac–Fock code. This comparison is used for line identification and tests the theoretical methods, which are in agreement with the experimental data up to \(49\,\hbox {meV}\). The theoretical calculations have been extended to B, \(\hbox {C}^+\), \(\hbox {Si}^{9+}\), \(\hbox {Cr}^{19+}\) and \(\hbox {Fe}^{21+}\), which were the only B-like ions where such transitions were measured up to now.

Abstract Image

类硼硫和氩中 $$2p \rightarrow 1s$$ 转换的高精度、无参照测量
摘要 我们测量了硫和氩的核激发硼离子中的几种(2p/rightarrow 1s/)转变能。测量不需要参照物,精确度为百万分之几。X 射线由电子回旋共振离子源的等离子体产生,用双晶 X 射线光谱仪测量。测量到的硫(1s 2s^2 2p^2~J - 1s^2 2s^2 2p~J')线的精度为({大约3.8}\,{hbox {ppm}}\),氩的({大约2.5}\,{hbox {ppm}}\)精度为({大约2.5}\,{hbox {ppm}}\)。这些谱线能量与使用 mdfgme 多配置 Dirac-Fock 代码进行的相对论原子结构计算结果进行了比较。这种比较被用于谱线识别和检验理论方法,理论方法与高达 \(49\\hbox{meV}/)的实验数据是一致的。理论计算已经扩展到 B、(\hbox {C}^+\) 、\(\hbox {Si}^{9+}\) 、\(\hbox {Cr}^{19+}\) 和\(\hbox {Fe}^{21+}\),这些是迄今为止唯一测量到这种转变的类 B 离子。
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来源期刊
The European Physical Journal D
The European Physical Journal D 物理-物理:原子、分子和化学物理
CiteScore
3.10
自引率
11.10%
发文量
213
审稿时长
3 months
期刊介绍: The European Physical Journal D (EPJ D) presents new and original research results in: Atomic Physics; Molecular Physics and Chemical Physics; Atomic and Molecular Collisions; Clusters and Nanostructures; Plasma Physics; Laser Cooling and Quantum Gas; Nonlinear Dynamics; Optical Physics; Quantum Optics and Quantum Information; Ultraintense and Ultrashort Laser Fields. The range of topics covered in these areas is extensive, from Molecular Interaction and Reactivity to Spectroscopy and Thermodynamics of Clusters, from Atomic Optics to Bose-Einstein Condensation to Femtochemistry.
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