催化作用
三元运算
介孔材料
等离子体
材料科学
吸附
甲醛
核化学
物理化学
物理
化学
有机化学
量子力学
计算机科学
程序设计语言
作者
Chaozhong Li,Danyang Wang,Yue Fu,Lei Huang,D. G. Yu
出处
期刊:NANO
[World Scientific]
日期:2023-10-20
卷期号:18 (13)
被引量:1
标识
DOI:10.1142/s1793292023501023
摘要
Coupling low-temperature plasma technology with catalysts can significantly enhance air purification efficiency and mitigate the generation of secondary pollutants. In this study, mesoporous [Formula: see text]-Al 2 O 3 supported Mn–Ce–Co ternary oxides were introduced into a widely employed tubular dielectric barrier discharges (DBD) reactor for indoor air purification. The plasma-catalytic degradation of HCHO exhibited the following degradation efficiency order: Mn–Ce–Co/[Formula: see text]-Al 2 O 3 [Formula: see text] Mn/[Formula: see text]-Al 2 O 3 [Formula: see text] Mn–Ce/[Formula: see text]-Al 2 O 3 [Formula: see text] Co/[Formula: see text]-Al 2 O 3 [Formula: see text] [Formula: see text]-Al 2 O 3 [Formula: see text] Ce/[Formula: see text]-Al 2 O 3 [Formula: see text] Plasma. When compared to plasma treatment alone, the catalyst resulted in a remarkable 1.8-fold enhancement under conditions of 3.0[Formula: see text]kV, [Formula: see text]C, 60% RH. Additionally, the concentrations of the by-products O 3 and NO[Formula: see text] were significantly reduced by 88.2% and 93.3%, respectively. The synergistic interaction between Mn, Ce and Co oxides facilitated the formation and transportation of surface-reactive oxygen species, thereby contributing to the thorough oxidation of HCHO and organic intermediates during the plasma-catalytic process. Moreover, the high specific surface area offered by mesoporous materials enhanced the adsorption and catalytic activity towards HCHO.
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