选择性
烯烃纤维
催化作用
材料科学
甲烷
解吸
吸附
氢
化学工程
光化学
碳氢化合物
制氢
纳米技术
工作(物理)
微型反应器
无机化学
多相催化
作者
Yongting Li,Chen‐Yang Shen,Bowen Chen,Chenjia Liang,Yiming Bi,Congyan Jiang,Qiaolun Liu,Yongzheng Wang,Weiping Ding,Xuefeng Guo
标识
DOI:10.1021/acsami.5c21806
摘要
Traditional Fischer–Tropsch synthesis (FTS) on iron-based catalysts is limited by the Anderson–Schulz–Flory (ASF) distribution, with a maximum theoretical selectivity of 58% for the C2–C4 hydrocarbons, accompanied by substantial methane byproduct formation. Suppressing methane formation while enhancing light olefin selectivity is of great significance, however, it remains a major challenge in this field. Herein, we developed a series of Fe/Cux@Al2O3 surrounded catalysts, which in situ formed a unique ε-Fe2C/Cu interfacial structure during the FTS. The optimized Fe/Cu3.8@Al2O3 catalyst achieved 84.7% selectivity toward C2–C4 hydrocarbons, significantly exceeding the ASF distribution limit, with a low CH4 selectivity of 8.9% and an unprecedented light olefin selectivity of 62.3%. Further investigation and theoretical calculations revealed that in the FTS reaction, CO and H2 adsorbed and dissociated on the ε-Fe2C surface, leading to the formation of CHx and CnHm intermediates through hydrogenation and chain-growth processes. Meanwhile, H* dissociated on the Cu surface migrated to the adjacent ε-Fe2C sites via hydrogen spillover. The appropriate supply of H* regulated the hydrogenation and desorption of CHx and CnHm species, simultaneously suppressing CH4 formation and limiting long-chain hydrocarbons (C5+) production. This work provides valuable insights and strategies for designing advanced FTS catalysts for the highly selective production of light olefins from syngas.
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