首页> 外文OA文献 >Tailored voltage waveform capacitively coupled plasmas in electronegative gases: frequency dependence of asymmetry effects
【2h】

Tailored voltage waveform capacitively coupled plasmas in electronegative gases: frequency dependence of asymmetry effects

机译:负电压中量身定制的电压波形电容耦合等离子体:不对称效应的频率依赖性

摘要

Capacitively coupled radio frequency plasmas operated in an electronegative gas (CF4) and driven by voltage waveforms composed of four consecutive harmonics are investigated for different fundamental driving frequencies using PIC/MCC simulations and an analytical model. As has been observed previously for electropositive gases, the application of peak- shaped waveforms (that are characterized by a strong amplitude asymmetry) results in the development of a DC self-bias due to the electrical asymmetry effect (EAE), which increases the energy of ions arriving at the powered electrode. In contrast to the electropositive case (Korolov et al 2012 J. Phys. D: Appl. Phys. 45 465202) the absolute value of the DC self-udbias is found to increase as the fundamental frequency is reduced in this electronegative discharge, providing an increased range over which the DC self-bias can be controlled. The analytical model reveals that this increased DC self-bias is caused by changes in the spatial pro le and the mean value of the net charge density in the grounded electrode sheath. The spatio-temporally resolved simulation data show that as the frequency is reduced the grounded electrode sheath region becomes electronegative. The presence of negative ions in this sheath leads to very different dynamics of the power absorption of electrons, which in turn enhances the local electronegativity and plasma density via ionization and attachment processes. The ion ux to the grounded electrode (where the ion energy is lowest) can be up to twice that to the powered electrode. At the same time, while the mean ion energies at both electrodes are quite different, their ratio remains approximately constant for all base frequencies studied here.
机译:使用PIC / MCC仿真和分析模型,研究了在负电性气体(CF4)中工作并由四个连续谐波组成的电压波形驱动的电容耦合射频等离子体在不同的基本驱动频率下的情况。正如以前对电正性气体所观察到的那样,由于电不对称效应(EAE)的作用,峰形波形(以强烈的幅度不对称性为特征)的应用导致直流自偏置的发展,这会增加能量离子到达带电电极。与电正性情况相反(Korolov等人,2012 J. Phys。D:Appl。Phys。45 465202),发现直流自负偏压的绝对值会随着该负电性放电中基频的降低而增加,从而提供可以控制直流自偏置的更大范围。分析模型表明,这种增加的直流自偏压是由空间分布的变化以及接地电极护套中净电荷密度的平均值引起的。时空解析的仿真数据表明,随着频率降低,接地的电极护套区域将变为负电。在该鞘中存在负离子会导致电子吸收功率的动力发生很大变化,从而通过电离和附着过程增强了局部电负性和等离子体密度。接地电极的离子通量(离子能量最低)可以达到通电电极的两倍。同时,尽管两个电极上的平均离子能量差异很大,但对于此处研究的所有基本频率,它们的比率仍保持近似恒定。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利

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