尖晶石
烟气
材料科学
催化作用
煅烧
氧化物
空间速度
过氧化物
化学工程
无机化学
硫酸盐
冶金
化学
有机化学
工程类
选择性
作者
Chaofang Li,Kaisong Xiang,Fenghua Shen,Jun Wu,Hao Chen,Cao Liu,Yuan Jing,Xiaofeng Xie,Weichun Yang,Hui Liu
标识
DOI:10.1021/acsami.3c18372
摘要
The low O2 activation ability at low temperatures and SO2 poisoning are challenges for metal oxide catalysts in the application of Hg0 removal in flue gas. A novel high-entropy fluorite oxide (MgAlMnCo)CeO2 (Co-HEO) with the second phase of spinel is synthesized by the microwave hydrothermal method for the first time. A high efficiency of Hg0 removal (close to 100%) is achieved by Co-HEO catalytic oxidation at temperatures as low as 100 °C and in the atmosphere of 145 μg m–3 Hg0 at a high GHSV (gas hourly space velocity) of 95,000 h–1. According to O2-TPD and in situ FT-IR, this extremely superior catalytic oxidation performance at low temperatures originates from the activation ability of Co-HEO to transform O2 into superoxide and peroxide, which is promoted by point defects induced from the spinel/fluorite heterointerfaces. Meanwhile, SO2 resistance of Co-HEO for Hg0 removal is also improved up to 2000 ppm due to the high-entropy-stabilized structure, construction of heterointerfaces, and synergistic effect of the multicomponents for inhibiting the oxidation of SO2 to surface sulfate. The design strategy of the dual-phase high-entropy material launches a new route for metal oxides in the application of catalytic oxidation and SO2 resistance.
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