Formation of Ar2 + ions in cold argon plasmas through the ternary recombination mechanism

Fresnelle Tenanguena Nongni, R. Kalus, M. Benhenni, F. Gadéa, Mohammed Yousfi
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Abstract

A general scheme for calculating ternary recombination rate constants of atomic species based on a hybrid quantum-classical nonadiabatic dynamics approach is presented and applied to a specific case of the ternary recombination of atomic ions of argon in cold argon plasmas. Rate constants are reported for both fine-structure states of the Ar$^+$ ion, $^2P_{3/2}$ and $^2P_{1/2}$, $T = 300$ K, and selected values of the reduced electric field. A thorough comparison with literature data available for $T=300$ K and a couple of close temperatures is performed with a favorable agreement achieved. It is shown that the excited Ar$^+(^2P_{1/2})$ ions may contribute to the formation of dimer ions, Ar$_2^+$, as efficiently as the ground-state ions, Ar$^+(^2P_{3/2})$, due to fast internal conversion of the electronic energy which takes place in ternary collision complexes, Ar$^+$/Ar/Ar.
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通过三元重组机制在冷氩等离子体中形成 Ar2 + 离子
本文介绍了基于混合量子经典非绝热动力学方法计算原子物种三元重组速率常数的一般方案,并将其应用于冷氩等离子体中氩原子离子三元重组的特定情况。报告了 Ar$^+$ 离子的两种精细结构状态($^2P_{3/2}$ 和 $^2P_{1/2}$)、$T = 300$ K 和选定的还原电场值的速率常数。与文献中关于 $T=300$ K 和几个相近温度的数据进行了全面比较,结果一致。结果表明,激发态 Ar$^+(^2P_{1/2})$ 离子与基态离子 Ar$^+(^2P_{3/2})$ 一样,由于在三元碰撞复合物 Ar$^+$/Ar/Ar 中发生了电子能量的快速内部转换,因此激发态 Ar$^+(^2P_{1/2})$ 离子可以有效地促进二聚态离子 Ar$_2^+$ 的形成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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