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Exploration of a MgO cathode for improving the intensity of pulsed discharge plasma at atmosphere

DOI:10.1088/2058-6272/aace9e 期刊:Plasma Science and Technology 出版年份:2018 更新时间:2025-09-10 09:29:36
摘要: With regard to the lower density and energy of electrons in pulsed discharge plasma (PDP) at atmosphere, leading to the lower energy utilization of plasma, we propose a MgO cathode to enhance the plasma intensity according to field emission principle. The MgO cathode is prepared by an electro-depositing MgO film on a stainless steel plate. This way, the positive charges come to the cathode and accumulate on the surface of the MgO film, leading to the enhancement of the electric field intensity between the cathode and MgO film, and result in the strong emission of secondary electrons from the MgO cathode. As a result, the intensity of plasma can be enhanced. Herein, the effect of the MgO cathode on the intensity of PDP is investigated. It was shown that the discharge peak current was improved by 20% compared with that of without the MgO cathode. With increasing the MgO film thickness, discharge intensity, including the peak current, transforming charge and spectrum intensity first increased and then decreased. Higher enhancement of peak current, transforming charge and spectrum intensity were acquired with a higher peak voltage. Compared to a cathode without MgO film, the ozone production is higher with MgO cathode employed. The research proposes a novel approach for improving the intensity of discharge plasma, and also provides a reference for further application of PDP.
作者: He GUO,Xiaomei YAO,Jie LI,Nan JIANG,Yan WU
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To explore the use of a MgO cathode for improving the intensity of pulsed discharge plasma (PDP) at atmosphere, aiming to enhance the energy utilization of plasma for applications such as waste gas treatment.

The application of a MgO cathode significantly enhances the intensity of PDP, with optimal performance at a specific MgO film thickness. Higher peak voltages further improve discharge intensity and ozone production. This novel approach offers potential for improving plasma-based applications.

The study is limited to atmospheric pressure conditions and specific configurations of the PDP system. The effect of MgO film thickness on discharge intensity shows an optimal point, beyond which performance decreases.

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