Study of argon ions density and electron temperature and density in magnetron plasma by optical emission spectroscopy and collisional-radiative model

Kirill E. Evdokimov, Maxim E. Konischev, Vladimir F. Pichugin, Z. Sun
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引用次数: 30

Abstract

Optical emission spectroscopy (OES) combined with the models of plasma light emission becomes non-intrusive and versatile method of plasma parameters determination. In this paper we have studied the densities of charge carriers and electron temperature in Ar plasma of pulsed DC magnetron in different experimental conditions. Electron density and temperature were determined by fitting of relative emission line intensities calculated from collisional-radiative model (CRM) to experimental ones. The model describes the kinetics of the first 40 excited states of neutral argon Ar and takes into account the following processes: electron impact excitation/deexcitation, spontaneous light emission, radiation trapping, electron impact ionization, and metastable quenching due to diffusion to walls. Then, ions density was determined from relative intensity of 488 nm Ar+ emission line and simple CRM accounting excitation from ground states of neutral Ar and ion Ar+. The values of electron and ion density agree very well. To test the stability of results, we performed Monte-Carlo calculations with random variation of experimental spectrum as well as of excitation cross-sections and estimated confidence intervals and errors for plasma parameters. Also, we validated OES study by comparison with Langmuir probe measurements. The agreement between optical and probe techniques is satisfactory.

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用发射光谱和碰撞辐射模型研究磁控管等离子体中氩离子密度和电子温度密度
光学发射光谱(OES)与等离子体光发射模型相结合,成为一种非侵入式、通用的等离子体参数测定方法。本文研究了脉冲直流磁控管氩等离子体在不同实验条件下的载流子密度和电子温度。通过将碰撞辐射模型(CRM)计算的相对发射线强度与实验结果拟合,确定了电子密度和温度。该模型描述了中性氩氩的前40个激发态的动力学,并考虑了以下过程:电子撞击激发/去激发、自发光发射、辐射捕获、电子撞击电离和由于扩散到壁上而引起的亚稳猝灭。然后,通过488 nm Ar+发射线的相对强度和中性Ar和离子Ar+基态的简单CRM会计激发来确定离子密度。电子密度和离子密度的值吻合得很好。为了检验结果的稳定性,我们对实验光谱和激发截面的随机变化进行了蒙特卡罗计算,并估计了等离子体参数的置信区间和误差。此外,我们通过与Langmuir探针测量结果的比较验证了OES研究。光学技术和探针技术的一致性令人满意。
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