介质阻挡放电
热解
材料科学
电介质
废物管理
等离子体
非热等离子体
化学工程
还原(数学)
环境科学
光电子学
工程类
物理
几何学
数学
量子力学
作者
Youqi Zhu,Jingyuan Sima,Jiaxing Song,Jun Wang,Qunxing Huang
标识
DOI:10.1080/09593330.2025.2538823
摘要
Converting CO2 into valuable chemicals with low cost is significantly attractive for building a carbon-neutral society. Compared to the high energy-consuming CO2 chemical reduction methods, this study proposed a plasma-assisted waste conversion process at room temperature and atmospheric pressure. A coaxial dielectric barrier discharge (DBD) reactor was utilized for plasma-assisted CO2 reduction. Ethylene (C2H4), simulating waste plastic pyrolysis gas, was introduced into the reactor under ambient conditions. The effects of key parameters - CO2/C2H4 molar ratio (4:1-1:4), plasma voltage (20-50 V), and feed flow rate (50-500 mL/min) - were systematically investigated to optimize the production of oxygen-containing liquid hydrocarbons. Product composition was analyzed through GC-MS, revealing dominant alcohols (e.g. 1-butanol, 26.81%) and acids (e.g. acetic acid, 23.92%). Results show CO2 can be successfully reduced to liquid hydrocarbon products, and the main effect on product distributions is the CO2/C2H4 molar ratio. The selectivity of typical products (1-butanol l and acetic acid) were theoretically discussed through DFT analysis, enhancing the understanding of the reaction process involved in the hydrogenation reduction of aldehydes to alcohols and the oxidation of aldehydes to acids. This study represents a novel approach for CO2 reduction by utilizing waste plastic pyrolysis.
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