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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Density Functional Theory Study of Iron and Cobalt Carbides for Fischer-Tropsch Synthesis
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Density Functional Theory Study of Iron and Cobalt Carbides for Fischer-Tropsch Synthesis

机译:费-托合成法中铁和钴碳化物的密度泛函理论研究

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摘要

Carbides are important phases in heterogeneous catalysis. However, the understanding of carbide phases is inadequate: Fe and Co are the two commercial catalysts for Fischer-Tropsch (FT) synthesis, and experimental work showed that Fe carbide is the active phase in FT synthesis, whereas the appearance of Co carbide is considered as a possible deactivation cause. To understand very different catalytic roles of carbides, all the key elementary steps in FT synthesis, that is, CO dissociation, C1 hydrogenation, and C1+C1 coupling, are extensively investigated on both carbide surfaces using first principles calculations. In particular, the most important issues in FT synthesis, the activity and methane selectivity, on the carbide surfaces are quantitatively determined and analyzed. They are also discussed together with metallic Fe and Co surfaces. It is found that (i) Fe carbide is more active than metallic Fe and has similar methane selectivity to Fe, being consistent with the experiments; and (ii) Co carbide is less active than Co and has higher methane selectivity, providing evidence on the molecular level to support the suggestion that the formation of Co carbide is a cause of relatively high methane selectivity and deactivation on Co catalysts.
机译:碳化物是非均相催化中的重要相。但是,对碳化物相的理解是不够的:Fe和Co是费托合成(FT)的两种商业催化剂,实验工作表明Fe碳化物是FT合成中的活性相,而考虑到Co的出现作为可能的停用原因。为了理解碳化物的非常不同的催化作用,FT合成中的所有关键基本步骤(即CO解离,C1氢化和C1 + C1偶联)均使用第一性原理在两个碳化物表面上进行了广泛研究。尤其是,对FT合成中最重要的问题,即碳化物表面的活性和甲烷选择性进行了定量测定和分析。还与金属Fe和Co表面一起讨论了它们。发现(i)碳化铁比金属Fe更具活性,并且甲烷的选择性与Fe相似,与实验一致; (ii)碳化钴的活性低于钴,并具有较高的甲烷选择性,这在分子水平上提供了证据以支持以下观点:碳化钴的形成是甲烷选择性较高和在Co催化剂上失活的原因。

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