利用瞬态空腔击穿光谱检测空气中流线型放电的负离子

Kimika Fushimi, Naoki Shirai, Koichi Sasaki
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摘要

在空气中产生的大气压放电预计是负电性的,但迄今为止研究负离子密度的实验还很有限。在这项工作中,我们测量了在空气中产生的流束放电中负离子密度的时间变化。我们采用了空腔环落光谱法,通过激光光脱引起的微弱光吸收来检测负离子。通过对环降曲线的瞬态分析,推断出绝对负离子密度的时间变化。负离子是在放电电压和电流消失后检测到的。负离子密度在放电开始后 0.4 μs 开始增加。负离子密度的增加意味着在次级流束的后期阶段,电子附着频率随着电子冷却而提高。电子存活到 0.4 μs 的原因是电子能量越大,解离重组截面越小。负离子密度在 1 μs 时达到最大值,在 1.5 μs 时接近噪声水平。这种快速衰减与负离子通过与正离子相互中和而被破坏的现象是一致的。
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Detection of negative ions in streamer discharge in air by transient cavity ringdown spectroscopy
Atmospheric-pressure discharges generated in air are expected to be electronegative, but experiments that examine negative ion densities are limited to date. In this work, we measured the temporal variation of the negative ion density in a streamer discharge generated in air. We adopted cavity ringdown spectroscopy, where negative ions were detected via weak optical absorption caused by laser photodetachment. The temporal variation of the absolute negative ion density was deduced by the transient analysis of the ringdown curve. Negative ions were detected after the disappearance of the discharge voltage and current. The negative ion density started the increase at 0.4 μs after the initiation of the discharge. The increase means the enhancement of the electron attachment frequency in the late phase of the secondary streamer with electron cooling. The survival of electrons until 0.4 μs is understood by the steep decrease in the cross section of dissociative recombination with the electron energy. The maximum negative ion density was observed at 1 μs, and it was around the noise level at 1.5 μs. The rapid decay is consistent with the destruction of negative ions by mutual neutralization with positive ions.
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