甲烷化
催化作用
化学
铌
密度泛函理论
镍
漫反射红外傅里叶变换
无机化学
固溶体
化学工程
物理化学
计算化学
光催化
有机化学
工程类
作者
Xuhui Zou,Yuxiao Meng,Jianqiao Liu,Yongyong Cao,Lifeng Cui,Zhangfeng Shen,Qineng Xia,Xi Li,Siqian Zhang,Zhigang Ge,Yun‐Xiang Pan,Yangang Wang
标识
DOI:10.1021/acs.inorgchem.3c03881
摘要
CO2 methanation has attracted considerable attention as a promising strategy for recycling CO2 and generating valuable methane. This study presents a niobium-doped CeO2-supported Ni catalyst (Ni/NbCe), which demonstrates remarkable performance in terms of CO2 conversion and CH4 selectivity, even when operating at a low temperature of 250 °C. Structural analysis reveals the incorporation of Nb species into the CeO2 lattice, resulting in the formation of a Nb–Ce–O solid solution. Compared with the Ni/CeO2 catalyst, this solid solution demonstrates an improved spatial distribution. To comprehend the impact of the Nb–Ce–O solid solution on refining the electronic properties of the Ni–Ce interfacial sites, facilitating H2 activation, and accelerating the hydrogenation of CO2* into HCOO*, in situ diffuse reflectance infrared Fourier transform spectroscopy (DRIFTS) analysis and density functional theory (DFT) calculations were conducted. These investigations shed light on the mechanism through which the activity of CO2 methanation is enhanced, which differs from the commonly observed CO* pathway triggered by oxygen vacancies (OV). Consequently, this study provides a comprehensive understanding of the intricate interplay between the electronic properties of the catalyst's active sites and the reaction pathway in CO2 methanation over Ni-based catalysts.
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