Cu‐Promoted Pt/Ce0.5Zr0.5Ox Catalyst for Ammonia Production Reaction of Passive SCR from Nitric Oxide and Hydrogen

催化作用 选择性催化还原 稀烧 氨生产 化学 燃烧 高分辨率透射电子显微镜 无机化学 兴奋剂 氮氧化物 X射线光电子能谱 材料科学 化学工程 冶金 纳米技术 物理化学 有机化学 工程类 生物化学 光电子学 透射电子显微镜
作者
Min Liu,Ruining Yan,Yinan Wang,Xuteng Zhao,Dong-Dong Guo,Honglin Cao,Reggie Zhan,He Lin
出处
期刊:ChemistrySelect [Wiley]
卷期号:7 (2)
标识
DOI:10.1002/slct.202100433
摘要

Abstract In response to stricter emission regulations, lean‐burn engines have attracted more and more attention. However, lean burn engines would inevitably lead to the increase in NO x emissions. The researchers combined Three‐Way Catalyst (TWC) and Selective Catalytic Reduction (SCR) to propose “passive SCR”, which makes the engine periodically switch between rich and lean burn. During rich combustion, ammonia is produced by the TWC catalyst, stored in the downstream SCR, and reacts with NO x during lean combustion, in which increasing the ammonia yield on the TWC catalyst is the key. In this study, the self‐propagating high‐temperature synthesis method was used to modify the catalyst by adding copper to improve the ammonia production efficiency. The conversion rate of catalysts with different copper doping ratios from NO to ammonia was measured. Through XRD, BET, H 2 ‐TPR, TEM, HRTEM, XPS, in‐situ DRIFTS, etc., the improvement mechanism of copper doping was analysed. The results showed that Pt 0.01 Cu 0.1 Ce 0.45 Zr 0.45 O x had the highest catalytic activity, the widest reaction temperature window (300–550 °C) with the conversion greater than 96 %. The characterization results showed that appropriate amount of copper doping can adjust the valence distribution, form more oxygen vacancies, and improve the distribution of active species. The in‐situ DRIFTS further demonstrated that the conversion from bridged to monodentate and bidentate nitrate may be the key factors on the catalyst surface.
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