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Optimizing CO_2 hydrogenation to methane over CoFe bimetallic catalyst: Experimental and density functional theory studies

机译:CoFe双金属催化剂上优化CO_2加氢制甲烷的实验和密度泛函理论研究

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Alumina supported cobalt (Co) and cobalt-iron (CoFe) catalysts are active for CO2 hydrogenation. Different amounts of CO and CH4 are produced depending on the Co and Fe content. The composition of alumina supported CoFe that maximizes the methane yield for the CO2 methanation reaction was determined using statistically defined experiments and response surface methodology. The catalyst that maximized the methane yield contained 21.47 wt% Co and 2.53 wt% Fe on this alumina support. X-ray diffraction and temperature programme reduction studies showed that Fe enhances the reducibility of cobalt oxides to metallic cobalt. Furthermore, transmission electron microscopy with elemental analysis showed uniform distribution of Co and Fe as an evidence of CoFe bimetallic alloy formation. DFT calculations were used to study the adsorption of CO2 and its dissociation into CO and O on Co and CoFe catalysts. A comparison of reaction energy profiles reveals that CO2 dissociation becomes difficult on the CoFe catalyst containing the optimized composition. The experimentally observed increase in methane formation over CoFe catalyst is probably due to this inhibition of CO formation via CO2 dissociation.
机译:氧化铝负载的钴(Co)和钴铁(CoFe)催化剂对CO2加氢具有活性。取决于Co和Fe的含量,产生不同量的CO和CH 4。使用统计定义的实验和响应面方法确定了氧化铝负载的CoFe的成分,该成分可使CO2甲烷化反应的甲烷产率最大化。使甲烷产率最大化的催化剂在该氧化铝载体上包含21.47重量%的Co和2.53重量%的Fe。 X射线衍射和温度程序还原研究表明,Fe增强了氧化钴对金属钴的还原性。此外,具有元素分析的透射电子显微镜显示Co和Fe的均匀分布,作为CoFe双金属合金形成的证据。 DFT计算用于研究Co和CoFe催化剂对CO2的吸附及其分解为CO和O的能力。反应能量分布图的比较表明,在含有优化成分的CoFe催化剂上,CO2的分解变得困难。实验观察到的比CoFe催化剂更多的甲烷生成可能是由于这种抑制CO2分解产生的CO所致。

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