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用于丙烷燃烧的三维大孔MnZrO催化剂:协同结构及掺杂对物理化学和催化性能的影响

Three-dimensionally macroporous MnZrO catalysts for propane combustion: Synergistic structure and doping effects on physicochemical and catalytic properties.

作者信息

Zeng Kai, Li Xingyun, Wang Chao, Wang Zhong, Guo Peng, Yu Jun, Zhang Chuanhui, Zhao Xiu Song

机构信息

Institute of Materials for Energy and Environment, College of Materials Science and Engineering, Qingdao University, Qingdao 266071, PR China.

College of Chemical Engineering, Qingdao University of Science and Technology, Qingdao 266042, PR China.

出版信息

J Colloid Interface Sci. 2020 Jul 15;572:281-296. doi: 10.1016/j.jcis.2020.03.093. Epub 2020 Mar 28.

Abstract

Three-dimensionally macroporous (3DM) MnZrO catalysts were fabricated to reveal the structure and Zr-doping effects on both physicochemical properties and propane combustion behaviors. The increasing addition of zirconium is favorable for the formation of 3DM structure and amorphous Mn-Zr solid solution, leading to tunable physicochemical properties. The significant activity improvement after zirconium addition was originally attributable to the superior redox ability, higher oxygen mobility and more abundant oxygen vacancy. The excellent catalytic activity, cycling stability and water resistant ability over 3DM MnZrO make it a promising material for hydrocarbons elimination. The comparative TPSR, in situ DRIFTs and kinetics study over 3DM and bulk catalysts emphasize the advantageous function of 3DM architecture on promoting propane adsorption, oxidation and lattice oxygen mobility.

摘要

制备了三维大孔(3DM)MnZrO催化剂,以揭示其结构以及Zr掺杂对物理化学性质和丙烷燃烧行为的影响。锆添加量的增加有利于3DM结构和非晶态Mn-Zr固溶体的形成,从而导致可调控的物理化学性质。添加锆后活性显著提高,这最初归因于其优异的氧化还原能力、更高的氧迁移率和更丰富的氧空位。3DM MnZrO具有优异的催化活性、循环稳定性和耐水能力,使其成为一种有前景的烃类消除材料。对3DM和块状催化剂进行的对比TPR、原位DRIFTs和动力学研究强调了3DM结构在促进丙烷吸附、氧化和晶格氧迁移方面的有利作用。

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