Tang J Y, Zhang W, Sun J, Xu N, Ge C, Wu J D
Department of Optical Science and Engineering, Fudan University, Shanghai 200433, People's Republic of China.
Appl Spectrosc. 2008 Nov;62(11):1256-61. doi: 10.1366/000370208786401671.
The influence of pulsed laser ablation of an aluminum target on the nitrogen plasma produced by electron cyclotron resonance (ECR) microwave discharge has been studied by optical emission spectroscopy (OES) with time and space resolution. The continuous wave (CW) feature of the optical emissions from the ECR nitrogen plasma turns to vary with time and space due to pulsed laser ablation and the expansion of the ablation-induced aluminum plume in the nitrogen plasma. The optical emissions from the nitrogen plasma increase significantly and the emission intensity of nitrogen molecular ions is observed to be more than 20 times higher with the target being ablated in comparison to the case without target ablation. The comparison of the optical emissions from the nitrogen plasma with those from the aluminum plume indicates that the excitation enhancement of the nitrogen plasma occurs in the region where the aluminum plume is expanding, revealing that the expansion of the aluminum plume leads to the excitation enhancement of the nitrogen plasma. Relevant mechanisms responsible for the excitation enhancement of the nitrogen plasma through hybrid processes of ECR microwave discharge and pulsed laser ablation are also discussed.
通过具有时间和空间分辨率的光发射光谱法(OES),研究了脉冲激光烧蚀铝靶对电子回旋共振(ECR)微波放电产生的氮等离子体的影响。由于脉冲激光烧蚀以及烧蚀诱导的铝羽在氮等离子体中的膨胀,ECR氮等离子体发射的连续波(CW)特征随时间和空间发生变化。与未烧蚀靶的情况相比,在烧蚀靶时,氮等离子体的光发射显著增加,并且观察到氮分子离子的发射强度高出20倍以上。氮等离子体与铝羽的光发射比较表明,氮等离子体的激发增强发生在铝羽膨胀的区域,这表明铝羽的膨胀导致了氮等离子体的激发增强。还讨论了通过ECR微波放电和脉冲激光烧蚀的混合过程导致氮等离子体激发增强的相关机制。