烧结
颠倒
材料科学
金属
化学工程
冶金
复合材料
工程类
作者
Lili Lin,Jinjia Liu,Xi Liu,Zirui Gao,Ning Rui,Siyu Yao,Feng Zhang,Maolin Wang,Chang Liu,Lili Han,Feng Yang,Sen Zhang,Xiaodong Wen,Sanjaya D. Senanayake,José A. Rodríguez,Ding Ma
出处
期刊:Research Square - Research Square
日期:2021-05-26
标识
DOI:10.21203/rs.3.rs-538734/v1
摘要
Abstract The reverse sintering effect of Ni particles under thermal treatment has been observed in the Ni/γ-Mo 2 N catalysts. The ab initio molecular dynamic simulation has demonstrated the redispersion of metallic Ni particles into under-coordinated two-dimensional Ni clusters over γ-Mo 2 N is a thermodynamically favorable process. Utilizing pre-synthesized 4 nm Ni nanoparticles as the loaded particles, a Ni-4nm/γ-Mo 2 N model catalyst was synthesized and used to study the reverse sintering effect by the combination of multiple in-situ characterization methods, including in-situ quick XANES and EXAFS, ambient pressure XPS and environmental SE/STEM etc. The theoretical and experimental studies both confirmed the reverse sintering effect in the Ni-γ-Mo 2 N system is driven by the strong metal-support interaction between Ni and γ-Mo 2 N. The potential application of the reverse sintering effect in heterogeneous catalysis has been realized using the high temperature favored CO 2 hydrogenation reaction. The under-coordinated two-dimensional layered Ni clusters on molybdenum nitride support generated from the Ni-4nm/γ-Mo 2 N has been demonstrated to be a thermally stable catalyst in 50 h stability test, and exhibits a remarkable catalytic selectivity reverse compared with traditional Ni based catalyst, leading to a chemo-specific CO 2 hydrogenation to CO.
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