催化作用
氧气
选择性催化还原
氧化物
化学
氮气
挥发性有机化合物
对偶(语法数字)
氮氧化物
格子(音乐)
氮氧化物
化学工程
材料科学
无机化学
氮氧化物
物理化学
废物管理
有机化学
物理
工程类
艺术
文学类
燃烧
声学
作者
Peiqi Chu,Long Zhang,Zhiwei Wang,Wei Lü,Yuxi Liu,Hongxing Dai,Guangsheng Guo,Erhong Duan,Zhenxia Zhao,Jiguang Deng
标识
DOI:10.1021/acs.est.4c03049
摘要
Synergistic catalytic removal of multipollutants (e.g., volatile organic compound (VOC) oxidation and nitrogen oxide (NOx) reduction) is highly demanded due to the increasingly strict emission standards. The prevention of the key reactive intermediate species nitrite excessive oxidation over the supported noble-metal catalysts, rather than the traditional low-efficiency transition metal oxide catalysts, remains a great challenge. Herein, a sound strategy of Pd single atoms saturated with acidic transition element ligands is proposed. The coexistence of Pd and V dual single atoms strengthens the adsorption of reactants, while synergistic interaction between dual atoms and surface oxygen weakens activation of lattice oxygen, thus significantly reducing the overoxidation of nitrite. Meanwhile, the neutralization of the active Pd and inert V sites results in a rational decrease in the redox property of Pd and an obvious increase in that of V. The Pd1V1/CeO2 dual single-atom catalyst achieves 90% conversion of NOx and toluene at 238 and 230 °C and has a large temperature window (>150 °C) for NOx reduction. This research makes a breakthrough in the development of efficient supported noble-/transition-metal dual single-atom catalysts for VOC and NOx simultaneous purification.
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