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Mechanisms of bacterial inactivation in the liquid phase induced by a remote RF cold atmospheric pressure plasma jet

机译:远程射频冷大气压等离子体射流引起的液相细菌灭活机理

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A radio-frequency atmospheric pressure argon plasma jet is used for the inactivation of bacteria (Pseudomonas aeruginosa) in solutions. The source is characterized by measurements of power dissipation, gas temperature, absolute UV irradiance as well as mass spectrometry measurements of emitted ions. The plasma-induced liquid chemistry is studied by performing liquid ion chromatography and hydrogen peroxide concentration measurements on treated distilled water samples. Additionally, a quantitative estimation of an extensive liquid chemistry induced by the plasma is made by solution kinetics calculations. The role of the different active components of the plasma is evaluated based on either measurements, as mentioned above, or estimations based on published data of measurements of those components. For the experimental conditions being considered in this work, it is shown that the bactericidal effect can be solely ascribed to plasma-induced liquid chemistry, leading to the production of stable and transient chemical species. It is shown that HNO _2, ONOO- and H_2O_2 are present in the liquid phase in similar quantities to concentrations which are reported in the literature to cause bacterial inactivation. The importance of plasma-induced chemistry at the gas-liquid interface is illustrated and discussed in detail.
机译:射频大气压氩等离子体射流用于灭活溶液中的细菌(铜绿假单胞菌)。该源的特征在于功耗,气体温度,绝对紫外线辐照度的测量以及发射离子的质谱测量。通过对处理过的蒸馏水样品进行液相离子色谱和过氧化氢浓度测量,研究了等离子体诱导的液体化学。另外,通过溶液动力学计算对由等离子体诱导的广泛的液体化学进行定量估计。根据上述测量结果或基于已发布的这些组分的测量数据进行的估计,评估血浆中不同活性组分的作用。对于这项工作中考虑的实验条件,表明杀菌作用可以完全归因于血浆诱导的液体化学,从而导致产生稳定和短暂的化学物种。结果表明,液相中存在的HNO_2,ONOO-和H_2O_2的含量与文献报道的引起细菌灭活的浓度相似。阐述并详细讨论了在气液界面处等离子体诱导化学的重要性。

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