阿斯顿
原子物理学
等离子体
直线(几何图形)
离子
谱线
温度电子
电子密度
电子
物理
均匀加宽
光谱学
电离
多普勒展宽
计算物理学
核物理学
量子力学
数学
几何学
作者
Heather Johns,D. P. Kilcrease,J. Colgan,Elizabeth J. Judge,J. E. Barefield,R. C. Wiens,S. M. Clegg
标识
DOI:10.1088/0953-4075/48/22/224009
摘要
Electron collisional broadening of observed spectral lines depends on plasma electron temperature and density. Including this effect in models of measured spectra is necessary to determine plasma conditions; however, computational limits make accurate line broadening treatments difficult to implement in large-scale plasma modeling efforts. In this paper, we report on improvements to the treatment of electron collisional line broadening and illustrate this with calculations using the Los Alamos ATOMIC code. We implement the Dimitrijevic and Konjevic modified semi-empirical model Dimitrijevic and Konjevic (1986 Astron. and Astrophy. 163 297 and 1987 Astron. Astrophys. 172 345), which we amend by employing oscillator strengths from Hartree–Fock calculations. This line broadening model applies to near-neutral plasmas with electron temperatures of Te ∼ 1 eV and electron densities of Ne ∼ 1017 cm−3. We evaluate the D K-inspired model against the previous hydrogenic approach in ATOMIC through comparison to NIST-rated measurements for selected neutral and singly-ionized Ca, O, Fe, and Sn lines using both fine-structure and configuration-averaged oscillator strengths. The new D K-inspired model is significantly more accurate than the previous hydrogenic model and we find the use of configuration-averaged oscillator strengths a good approximation for applications such as LIBS (laser induced breakdown spectroscopy), for which we demonstrate the use of the D K-inspired model.
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