Wang Yifan, Wang Yanli, Kong Zhenkai, Kang Ying, Zhan Liang
State Key Laboratory of Chemical Engineering, Key Laboratory for Specially Functional Polymers and Related Technology of Ministry of Education, Shanghai Key Laboratory of Multiphase Materials Chemical Engineering, East China University of Science and Technology Shanghai 200237 China
RSC Adv. 2022 Jun 9;12(27):17182-17189. doi: 10.1039/d1ra06758c. eCollection 2022 Jun 7.
MnO nanorod catalysts were successfully synthesized by two different preparation methods using porous SiO nanorods as the template and investigated for the low-temperature selective catalytic reduction (SCR) of NO with NH. The catalysts were characterized by scanning electron microscopy, transmission electron microscopy, nitrogen adsorption, X-ray diffraction, X-ray photoelectron spectroscopy, and NH temperature-programmed desorption. The results show that the obtained MnO -P nanorod catalyst prepared by redox precipitation method exhibits higher NO removal activity than that prepared by the solvent evaporation method in the low temperature range of 100-180 °C, where about 98% NO conversion is achieved over MnO (0.36)-P nanorods. The reason is mainly attributed to MnO (0.36)-P nanorods possessing unique flower-like morphology and mesoporous structures with high pore volume, which facilitates the exposure of more active sites of MnO and the adsorption of reactant gas molecules. Furthermore, there is a lower crystallinity of MnO , higher percentage of Mn species and a large amount of strong acid sites on the surface. These factors contribute to the excellent low-temperature SCR activity of MnO (0.36)-P nanorods.
以多孔SiO纳米棒为模板,通过两种不同的制备方法成功合成了MnO纳米棒催化剂,并对其用于NH3低温选择性催化还原(SCR)NO的性能进行了研究。采用扫描电子显微镜、透射电子显微镜、氮气吸附、X射线衍射、X射线光电子能谱和NH3程序升温脱附等手段对催化剂进行了表征。结果表明,在100-180℃的低温范围内,通过氧化还原沉淀法制备的MnO(0.36)-P纳米棒催化剂比通过溶剂蒸发法制备的催化剂表现出更高的NO去除活性,其中MnO(0.36)-P纳米棒上的NO转化率约为98%。原因主要是MnO(0.36)-P纳米棒具有独特的花状形态和高孔容的介孔结构,这有利于MnO更多活性位点的暴露和反应气体分子的吸附。此外,MnO的结晶度较低,表面Mn物种的百分比更高,并且存在大量强酸位点。这些因素促成了MnO(0.36)-P纳米棒优异的低温SCR活性。