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首页> 外文期刊>Plasma Sources Science & Technology >Time-resolved tunable diode laser absorption spectroscopy of excited argon and ground-state titanium atoms in pulsed magnetron discharges
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Time-resolved tunable diode laser absorption spectroscopy of excited argon and ground-state titanium atoms in pulsed magnetron discharges

机译:脉冲磁控管放电中激发氩和基态钛原子的时间分辨可调谐二极管激光吸收光谱

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摘要

Time-resolved investigations of excited argon atom density and temperature and ground-state titanium atom density during high-power impulse magnetron sputtering (HiPIMS, repetition frequency 100 Hz) and direct current pulsed magnetron (repetition frequency 2.5 kHz) discharges (PMDs) in argon employing a titanium target were performed. Atom density and temperature were measured with the help of tunable diode laser absorption spectroscopy. Excited argon atoms form during the discharge pulse and again by three-body electron ion recombination in the afterglow. Similarly, the temperature of excited (metastable) argon atoms rises during the plasma on phase and again during the afterglow. The observed temporal evolution of the temperature is faster than expected from thermal conductivity considerations, which is taken as an indication that metastable and ground-state argon atoms are not in thermal equilibrium. The time dependence of titanium atoms can be explained by recombination and diffusion. The results provide new insights into the physics of PMDs.
机译:大功率脉冲磁控溅射(HiPIMS,重复频率100 Hz)和直流脉冲磁控管(重复频率2.5 kHz)放电(PMD)期间的激发氩原子密度和温度以及基态钛原子密度的时间分辨研究使用钛靶。借助于可调谐二极管激光吸收光谱法测量原子密度和温度。激发的氩原子在放电脉冲期间形成,并在余辉中再次通过三体电子离子重组形成。类似地,在等离子体同相期间以及在余辉期间,激发的(易变的)氩原子的温度升高。观察到的温度随时间的变化比热导率的考虑要快,这被认为是亚稳和基态氩原子未处于热平衡状态的指示。钛原子的时间依赖性可以通过重组和扩散来解释。结果为PMD的物理学提供了新的见解。

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