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Formulation and catalytic performance of MOF-derived Fe@C/Al composites for high temperature Fischer-Tropsch synthesis

机译:制定和催化性能MOF-derived Fe@C /铝复合材料为高费托合成温度

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摘要

High productivity towards C-2-C-4 olefins together with high catalyst stability are key for optimum operation in high temperature Fischer-Tropsch synthesis (HT-FTS). Here, we report the fabrication of Fe@C/Al composites that combine both the outstanding catalytic properties of the Fe-BTC MOF-derived Fe catalyst and the excellent mechanical resistance and textural properties provided by the inorganic AlOOH binder. The addition of AlOOH to Fe-BTC followed by pyrolysis in N-2 atmosphere at 500 degrees C results in composites with a large mesoporosity, a high Fe/Fe3O4 ratio, 10-35 nm average Fe crystallite size and coordinatively unsaturated Al3+ sites. In catalytic terms, the addition of AlOOH binder gives rise to enhanced C-2-C-4 selectivity and catalyst mechanical stability in HT-FTS, but at high Al contents the activity decreases. Altogether, the productivity of these Fe@C/Al composites is well above most known Fe catalysts for this process.
机译:高生产率对C-2-C-4烯烃在一起高催化剂稳定性最优的关键在高温费合成(HT-FTS)。制造Fe@C /铝复合材料的结合优秀的催化性能Fe-BTC MOF-derived铁催化剂和优秀的机械阻力和结构属性提供的无机AlOOH粘合剂。增加AlOOH Fe-BTC热解紧随其后在500摄氏度-大气中导致复合材料中孔隙大,高铁/ Fe3O4比率、10 - 35 nm平均铁微晶大小和协调不饱和与网站。在催化方面,AlOOH粘结剂的添加给增强C-2-C-4选择性和崛起在HT-FTS催化剂机械稳定性,但高铝内容活动减少。总之,这些Fe@C / Al的生产力复合材料远高于大多数已知铁催化剂这个过程。

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