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Spatiotemporal evolution of a single-electrode nanosecond pulsed microplasma jet over water

机译:水上单电极纳秒脉冲微等离子体射流的时空演化

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Biomedical applications, in particular, the application for root canal disinfection, have motivated fundamental studies of single-electrode microplasma jets. In this work, a single-electrode nanosecond pulsed microplasma jet and its interaction with liquid water are evaluated via spatiotemporal optical emission spectroscopy as well as nanosecond gated imaging. The helium microplasma jet was generated in atmospheric air by delivering 8 kV, 164 ns pulses at a pulse repetition rate of 500 Hz. When the microplasma jet impinged on water surface, the spatiotemporal optical emission spectroscopy identified a number of reactive plasma species including O∗, OH∗, He∗, N2∗, N2∗, and H∗. The presence of liquid water produced an approximately 10 times increase in the optical emission intensity compared to water not being present. As such, the presence of water has led to a significant increase in OH radical concentrations. Nanosecond gated imaging showed that the radius of the plasma plume varied with time between the nozzle and the water surface and presented a different propagation behavior from those in air.
机译:生物医学应用,尤其是根管消毒的应用,已经激发了单电极微等离子体射流的基础研究。在这项工作中,通过时空光发射光谱法和纳秒级选通成像技术评估了单电极纳秒级脉冲微等离子体射流及其与液态水的相互作用。氦微等离子体射流是通过以500 Hz的脉冲重复频率传输8 kV,164 ns的脉冲在大气中生成的。当微等离子体射流撞击到水表面时,时空光发射光谱法鉴定出许多反应性等离子体物质,包括O *,OH *,He *,N2 *,N2 *和H *。与不存在的水相比,液态水的存在使光发射强度增加了大约10倍。这样,水的存在导致OH自由基浓度的显着增加。纳秒级选通成像显示,等离子体羽的半径随喷嘴和水表面之间的时间而变化,并且呈现出与空气中不同的传播行为。

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