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In-Water Plasma Generation on a Liquid Wall Using a Compact Device and Dedicated Power Supply

机译:使用紧凑型设备和专用电源在液体壁上生成水中等离子体

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Plasmas that are generated on and in liquids are generally the subject of pure research at universities; however, they have considerable practical potential for use in material processing, water purification, and sterilization. Their chief drawback is that they require a large device to generate in-water plasmas and a bulky power supply. If the device size and the volume of the power supply could be reduced, it might be possible to realize water sterilization in home electric appliances, such as washing machines. We have developed a compact device with a unique structure and a dedicated power supply that provides high voltage at high frequencies for generating in-water plasmas. Our dedicated power supply occupies one-sixth of the volume of comparable types. The device can generate in-water plasmas in an air stream using ambient air introduced from outside using a pump. Hydroxyl (OH) radicals in in-water plasmas were detected by optical emission spectroscopy, and their spatial distribution was observed in the air steam using an intensified charge-coupled device camera and a bandpass filter of 309 nm. Hydroxyl radicals in water were detected as 5, 5-dimethyl-1-pyrroline-N-oxide (DMPO)-OH signals using electron spin resonance spin trapping, both before adding DMPO to water and after doping the plasma-treated water with DMPO. It was found that OH radicals were generated in in-water plasmas and persisted in plasma-treated water. Using the detection of DMPO-OH signals employing the postdoped method, OH radicals were measured at 0.86 nmol/cc; they remained in the water for a long time after turning OFF the power supply. Finally, we demonstrated the decomposition rate of indigo carmine using our device and power supply to be about 13-fold that of the comparable device, despite its consuming about one-seventh of the input power. Hydroxyl radicals have high oxidation potential, so in-water plasmas as a source of radicals may be applicable to water sterilization in home elect- ic appliances.
机译:在液体上和液体中产生的血浆通常是大学纯研究的主题。但是,它们在材料加工,水净化和灭菌中具有相当大的实用潜力。它们的主要缺点是它们需要大型设备来产生水中等离子体和庞大的电源。如果可以减小装置的尺寸和电源的体积,则有可能在洗衣机等家用电器中实现水消毒。我们已经开发出一种具有独特结构和专用电源的紧凑型设备,该专用电源可提供高频高电压以产生水中等离子体。我们的专用电源仅占同类电源的六分之一。该设备可以使用泵从外部引入的周围空气在气流中产生水中等离子体。通过光发射光谱法检测水中等离子体中的羟基(OH)自由基,并使用增强型电荷耦合器件照相机和309 nm带通滤光片在空气中观察其空间分布。使用电子自旋共振自旋阱检测水中的羟基自由基为5、5-二甲基-1-吡咯啉-N-氧化物(DMPO)-OH信号,既可以在向水中添加DMPO之前,也可以向等离子体处理过的水中掺杂DMPO。发现OH自由基在水中等离子体中产生并在等离子体处理过的水中持续存在。使用后掺杂方法检测DMPO-OH信号,测得的OH自由基为0.86 nmol / cc。关闭电源后,它们会留在水中很长时间。最后,我们证明了使用我们的设备和电源,靛蓝胭脂红的分解速率约为同类设备的13倍,尽管其消耗的输入功率约为七分之一。羟基自由基具有很高的氧化电位,因此作为自由基源的水中等离子体可用于家用电器的水消毒。

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