Effect of magnetic field configuration on double layer formation and reverse discharge ignition in bipolar HiPIMS

M Farahani, T Kozák, A D Pajdarová and J Čapek
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Abstract

The reverse discharge (RD) phenomenon in bipolar HiPIMS has been observed when a sufficiently long positive pulse is applied to the magnetron. Due to the magnetic field, electrons accumulated behind the magnetic trap are prevented from reaching the positive target. Consequently, a space charge double layer (DL) is formed between the positive target and the plasma behind the magnetic trap, leading to electron acceleration across the DL and RD ignition. This study reveals the significant impact of the magnetic field configuration on RD ignition. Experiments are performed using a Ti target involving magnetic field variation, wire probe measurements of floating potential, and optical emission spectroscopy imaging. It is found that adjusting the magnetic field to a more balanced configuration leads to earlier RD ignition, while a more unbalanced one delays or even prevents it. Specifically, the time of RD ignition decreases with an increase in the magnetic null point distance from the target. Moreover, the size and shape of optical emission in the RD varies with nearby probe placement, suggesting sensitivity to external electrodes.
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磁场配置对双极 HiPIMS 中双层形成和反向放电点火的影响
当在磁控管上施加足够长的正脉冲时,就会在双极 HiPIMS 中观察到反向放电 (RD) 现象。由于磁场的作用,磁阱后面积聚的电子无法到达正靶。因此,在正靶和磁阱后面的等离子体之间形成了空间电荷双层(DL),导致电子加速穿过 DL 和 RD 点火。这项研究揭示了磁场配置对 RD 点火的重大影响。实验使用钛靶进行,涉及磁场变化、浮动电势的线探测量和光学发射光谱成像。研究发现,将磁场调整到更平衡的配置会导致更早的 RD 点火,而更不平衡的配置则会延迟甚至阻止 RD 点火。具体来说,RD 的点火时间会随着磁零点与目标距离的增加而缩短。此外,RD 中光发射的大小和形状随附近探针位置的变化而变化,这表明对外部电极的敏感性。
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