论文标题

表面材料对射频驱动氢等离子体的负离子体积产生的影响

Influence of surface materials on the volume production of negative ions in a radio-frequency driven hydrogen plasma

论文作者

Ellis, J., Branson, J., Niemi, K., Wagenaars, E., Gans, T.

论文摘要

负原子氢离子(H $^{ - } $)通过激光光检查和Langmuir探针在氢气中测量脉冲的低压电子模式电感偶联射频(RF)驱动的等离子体。这项研究的重点是不同金属表面材料对H $^{ - } $离子体积产生的影响。 H $^{ - } $密度是在钨,不锈钢,铜,铝或钼的薄圆盘上方测量的,这是气体压力和施加的RF功率的函数。对于铜,铝和钼,发现H $^{ - } $密度对压力和RF功率非常不敏感,值介于3.6x10 $^{14} $至5.8x10 $^{14} $^{14} $ M $^{ - 3} $之间。 For stainless steel and tungsten, the H$^{-}$ dependency was found to be complex, apart from the case of a similar linear increase from 2.9x10$^{14}$ to 1.1x10$^{15}$ m$^{-3}$ with rf power at a pressure of 25 Pa. Two-photon absorption laser induced fluorescence was used to measure the atomic hydrogen densities and phase分辨的光发射光谱用于研究血浆动力学是否表面依赖。对观察到的两组研究材料之间观察到的差异的解释是根据表面反应机制来产生振动激发的氢分子的。

Negative atomic hydrogen ion (H$^{-}$) densities were measured in a pulsed low-pressure E-mode inductively-coupled radio-frequency (rf) driven plasma in hydrogen by means of laser photodetachment and a Langmuir probe. This investigation focuses on the influence of different metallic surface materials on the volume production of H$^{-}$ ions. The H$^{-}$ density was measured above a thin disc of either tungsten, stainless steel, copper, aluminium, or molybdenum placed onto the lower grounded electrode of the plasma device as a function of gas pressure and applied rf power. For copper, aluminium, and molybdenum the H$^{-}$ density was found to be quite insensitive to pressure and rf power, with values ranging between 3.6x10$^{14}$ to 5.8x10$^{14}$ m$^{-3}$. For stainless steel and tungsten, the H$^{-}$ dependency was found to be complex, apart from the case of a similar linear increase from 2.9x10$^{14}$ to 1.1x10$^{15}$ m$^{-3}$ with rf power at a pressure of 25 Pa. Two-photon absorption laser induced fluorescence was used to measure the atomic hydrogen densities and phase resolved optical emission spectroscopy was used to investigate whether the plasma dynamics were surface dependent. An explanation for the observed differences between the two sets of investigated materials is given in terms of surface reaction mechanisms for the creation of vibrationally excited hydrogen molecules.

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