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首页> 外文期刊>Plasma Sources Science & Technology >Electron bounce resonance heating in dual-frequency capacitively coupled oxygen discharges
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Electron bounce resonance heating in dual-frequency capacitively coupled oxygen discharges

机译:双频电容耦合氧放电中的电子反弹共振加热

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摘要

The electron bounce resonance heating (BRH) in dual-frequency capacitively coupled plasmas operated in oxygen is studied by different experimental methods and a particle-in-cell/Monte Carlo collision (PIC/MCC) simulation, and compared with the electropositive argon discharge. In comparison with argon, the experimental results show that in an oxygen discharge the resonance peaks in positive-ion density and light intensity tend to occur at larger electrode gaps. Moreover, at electrode gaps L > 2.5 cm, the positive-ion (and electron) density and the light emission drop monotonically in the oxygen discharge upon increasing L, whereas they rise (after an initial drop) in the argon case. At resonance gap the electronegativity reaches its maximum due to the BRH. All these experimental observations are explained by PIC/MCC simulations, which show that in the oxygen discharge the bulk electric field becomes quite strong and is out of phase with the sheath field. Therefore, it retards the resonance electrons when traversing the bulk, resulting in a suppressed BRH. Both experiment and simulation results show that this effect becomes more pronounced at lower high-frequency power, when the discharge mode changes from electropositive to electronegative. In a pure oxygen discharge, the BRH is suppressed with increasing pressure and almost diminishes at 12 Pa. Finally, the driving frequency significantly affects the BRH, because it determines the phase relation between bulk electric field and sheath electric field.
机译:通过不同的实验方法和粒子内/蒙特卡洛碰撞(PIC / MCC)模拟研究了在氧气中工作的双频电容耦合等离子体中的电子弹跳共振加热(BRH),并与正电氩气放电进行了比较。与氩气相比,实验结果表明,在氧气放电中,正离子密度和光强度的共振峰倾向于在较大的电极间隙处出现。此外,在电极间隙L> 2.5 cm时,随着L的增加,氧放电中的正离子(和电子)密度和光发射单调下降,而在氩气情况下,其上升(在初始下降之后)。在共振间隙,由于BRH,电负性达到最大值。所有这些实验观察都由PIC / MCC模拟解释,该模拟显示,在氧气放电中,整体电场变得非常强,并且与鞘层电场异相。因此,它在穿过主体时会延迟共振电子,从而抑制BRH。实验和仿真结果均表明,当放电模式从正电变为负电时,这种影响在较低的高频功率下更加明显。在纯氧放电中,BRH随着压力的升高而受到抑制,并在12 Pa时几乎减小。最后,驱动频率会极大地影响BRH,因为它决定了体电场与鞘电场之间的相位关系。

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