首页> 外文期刊>Journal of Analytical Atomic Spectrometry >Shift of ionization equilibrium in spatially confined laser induced plasma
【24h】

Shift of ionization equilibrium in spatially confined laser induced plasma

机译:在空间受限的激光诱导等离子体中电离平衡的偏移

获取原文
获取原文并翻译 | 示例
           

摘要

Spatial confinement of laser-induced plasmas has been recognized in the last decade as one of the ways to enhance the sensitivity of trace detection. However, there is no clear explanation for the fact that some lines are enhanced while others, in contrast, are weakened in confined plasma. In this work, we investigated the causes of the opposite changes of atomic and ionic lines in spatially confined plasma. For this purpose, we designed two cylindrical microchambers (2 and 4 mm in diameter) with side-on collection of emission. Plasma evolution in these chambers was studied at two laser energies: 70 mJ and 240 mJ. An accurate estimate of plasma parameters demonstrated that there were no changes in the low energy regime, while sharp changes both in T and especially Ne were observed for the two microchambers in the high energy regime. The features of evolution curves, such as the maximum and its temporal position, are explained by a shift of ionization equilibrium towards neutral atoms in the plasma after compression by the reflected shock wave. This clearly explains the differences in the evolution of the intensities of atomic and ionic lines: Al II 281.62 nm and Mg II lines are decreased rapidly, while atomic lines Sc I 402.37 nm and Mg I 277.98 nm are strongly enhanced at delays of 3-4 ms. Another observation is mixing of the plume and the consequent reduction of self-absorption for resonance lines due to collision of the shock wave with the plasma front.
机译:在过去的十年中,激光诱导等离子体的空间限制已被认为是提高痕量检测灵敏度的一种方法。但是,对于有限的等离子体中的某些谱线增强而另一些谱线却减弱的事实,没有明确的解释。在这项工作中,我们研究了空间受限等离子体中原子和离子线相反变化的原因。为此,我们设计了两个圆柱状的微腔(直径分别为2和4 mm),并侧面收集了发射光。在两个激光能量下研究了这些腔室中的等离子体演化:70 mJ和240 mJ。对血浆参数的准确估算表明,低能态没有变化,而高能态中的两个微腔室的T值,尤其是Ne值都发生了急剧变化。演化曲线的特征(例如最大值及其时间位置)可以通过在被反射的冲击波压缩后电离平衡向等离子体中的中性原子的移动来解释。这清楚地解释了原子线和离子线强度变化的差异:Al II 281.62 nm和Mg II线迅速减小,而原子线Sc I 402.37 nm和Mg I 277.98 nm延迟3-4时,强度大大增强。多发性硬化症。另一个观察结果是由于冲击波与等离子体前缘的碰撞,羽流混合并因此降低了共振线的自吸收。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号