Interactions between atmospheric pressure plasmas and metallic catalyst particles in packed bed reactors

电场 等离子体 大气压力 电离 原子物理学 电子 催化作用 材料科学 化学物理 化学 离子 分析化学(期刊) 有机化学 地质学 物理 海洋学 量子力学
作者
Juliusz Kruszelnicki,Kenneth Engeling,John E. Foster,Mark J. Kushner
出处
期刊:Journal of Physics D [IOP Publishing]
卷期号:54 (10): 104001-104001 被引量:27
标识
DOI:10.1088/1361-6463/abcc92
摘要

Abstract Atmospheric-pressure plasmas sustained in packed bed reactors (PBRs) are being investigated for chemical conversion of gases and pollution control. Metallic catalysts added to the surfaces of the dielectric beads of PBRs can increase the energy efficiency and selectivity of chemical processes by reducing operating temperature and providing additional reaction pathways. In this paper, results from a computational investigation of plasma surface interactions between micron-scale metallic catalysts and humid-air plasmas in PBRs are discussed. We found that high plasma density regions form in the proximity of the metallic catalysts. These higher-density plasma regions were confirmed experimentally using ICCD imaging. The intense plasmas result from geometrical electric field enhancement and redistribution of charges within the conductive particles, leading to further enhancement. The high electric field at the triple points of the catalysts can produce electric field emission of electrons, which provides a pre-ionization source or additional source of electrons. These regions of high electric field and sources of electrons guide discharges towards the catalysts and increases fluxes of excited species, ions, electrons and photons to their surfaces. These fluxes are focused primarily at the triple points between the metal, dielectric and gas. As a result, the catalyst is locally heated, which could lead to further increased rates of thermocatalytic reactions on the surface. Surface roughness of the metal inclusions can lead to additional electric field enhancement, which changes the character of the discharges in the vicinity of the catalysts while reducing breakdown voltage.
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