论文标题
平面射频磁铁等离子体中的电子动力学:iii。比较功率吸收动力学与模拟结果的实验研究
Electron dynamics in planar radio frequency magnetron plasmas: III. Comparison of experimental investigations of power absorption dynamics to simulation results
论文作者
论文摘要
在低压下操作的磁化电容耦合射频放电中,磁通量密度对放电性能的影响最近通过实验研究和模拟中研究了。发现磁不对称效应可以通过调谐磁场强度来控制直流自偏和离子能分布。在这项研究中,我们着重于在氩气中操作的低压电容RF放电中,在存在类似木ementron的磁场构型的情况下对电子功率吸收动力学的实验研究。相位解析的光发射光谱测量可为纳秒时间尺度上的电子动力学提供见解。发现磁通量密度和中性气压会强烈改变这些动力学。对于特定条件,在靠近动力电极的区域中,磁场有效地将能量电子捕获,并用作目标表面。根据磁场强度,观察到电场逆转导致鞘塌陷期间电子的进一步加速。这些发现在细胞模拟中得到了二维粒子的支持,这些粒子对放电动力学产生了更深入的见解。
In magnetized capacitively coupled radio-frequency discharges operated at low pressure the influence of the magnetic flux density on discharge properties has been studied recently both by experimental investigations and in simulations. It was found that the Magnetic Asymmetry Effect allows for a control of the DC self-bias and the ion energy distribution by tuning the magnetic field strength. In this study, we focus on experimental investigations of the electron power absorption dynamics in the presence of a magnetron-like magnetic field configuration in a low pressure capacitive RF discharge operated in argon. Phase Resolved Optical Emission Spectroscopy measurements provide insights into the electron dynamics on a nanosecond-timescale. The magnetic flux density and the neutral gas pressure are found to strongly alter these dynamics. For specific conditions energetic electrons are efficiently trapped by the magnetic field in a region close to the powered electrode, serving as the target surface. Depending on the magnetic field strength an electric field reversal is observed that leads to a further acceleration of electrons during the sheath collapse. These findings are supported by 2-dimensional Particle in Cell simulations that yield deeper insights into the discharge dynamics.