The investigation of synergistic interactions between CO2 plasma and porous catalysts through 2-D fluid modeling

Kangkang Li, Xiaoting Lei, He Cheng, Wenchao Zhang, Xinpei Lu
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Abstract

The efficiency of plasma-coupled catalysis is believed to be higher than the sum of the efficiencies of the plasma and catalyst when acting independently. However, the underlying microscopic interaction mechanism responsible for this phenomenon remains systematically unexplored. This paper presents an initial demonstration of the combined effects of complex porous-structured catalysts and CO2 plasma using a two-dimensional fluid dynamics model. The study attests to the contribution of the catalyst’s porous structure in enhancing the electric field intensity, facilitating ‘hotspot’ formation, accelerating plasma development, improving ionization rate, as well as increasing the density of electrons, reactive heavy species, and products. It also uncovers the ability of plasma to penetrate into the surface pores of the catalytic bead, and the potential occurrence of micro-discharges within catalyst interior pores. Meanwhile, the reactive species of plasma such as the energetic electrons and the vibrationally/electronically excited CO2 in plasma may also impact the surface processes of the catalyst through mechanisms such as reducing reaction barriers. The successful replication of these interactions underscores the potential of this model as a valuable tool for investigating the efficiency optimization of plasma-enhanced catalytic conversion of CO2.
通过二维流体建模研究二氧化碳等离子体与多孔催化剂之间的协同作用
等离子体耦合催化的效率被认为高于等离子体和催化剂独立作用时的效率之和。然而,造成这一现象的潜在微观相互作用机制仍未得到系统的探索。本文利用一个二维流体动力学模型,初步展示了复杂多孔结构催化剂和二氧化碳等离子体的综合效应。研究证明了催化剂的多孔结构在增强电场强度、促进 "热点 "形成、加速等离子体发展、提高电离率以及增加电子、活性重金属和产物密度方面的作用。它还揭示了等离子体渗入催化珠表面孔隙的能力,以及催化剂内部孔隙可能发生的微放电。同时,等离子体中的活性物种,如等离子体中的高能电子和振动/电子激发的二氧化碳,也可能通过降低反应障碍等机制影响催化剂的表面过程。这些相互作用的成功复制强调了该模型作为研究等离子体增强催化转化二氧化碳效率优化的重要工具的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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