喷气燃料
化石燃料
碳中性燃料
二氧化碳电化学还原
二氧化碳
燃烧
可再生燃料
合成燃料
石油化工
碳氢化合物
甲烷
碳纤维
废物管理
环境科学
合成气
材料科学
催化作用
一氧化碳
化学
有机化学
环境工程
复合数
工程类
复合材料
作者
Benzhen Yao,Tiancun Xiao,Ofentse A. Makgae,Xiangyu Jie,Sergio González-Cortés,Shaoliang Guan,Angus I. Kirkland,Jonathan R. Dilworth,Hamid A. Al‐Megren,Saeed Alshihri,Peter J. Dobson,Gari P. Owen,John Thomas,Peter P. Edwards
标识
DOI:10.1038/s41467-020-20214-z
摘要
Abstract With mounting concerns over climate change, the utilisation or conversion of carbon dioxide into sustainable, synthetic hydrocarbons fuels, most notably for transportation purposes, continues to attract worldwide interest. This is particularly true in the search for sustainable or renewable aviation fuels. These offer considerable potential since, instead of consuming fossil crude oil, the fuels are produced from carbon dioxide using sustainable renewable hydrogen and energy. We report here a synthetic protocol to the fixation of carbon dioxide by converting it directly into aviation jet fuel using novel, inexpensive iron-based catalysts. We prepare the Fe-Mn-K catalyst by the so-called Organic Combustion Method, and the catalyst shows a carbon dioxide conversion through hydrogenation to hydrocarbons in the aviation jet fuel range of 38.2%, with a yield of 17.2%, and a selectivity of 47.8%, and with an attendant low carbon monoxide (5.6%) and methane selectivity (10.4%). The conversion reaction also produces light olefins ethylene, propylene, and butenes, totalling a yield of 8.7%, which are important raw materials for the petrochemical industry and are presently also only obtained from fossil crude oil. As this carbon dioxide is extracted from air, and re-emitted from jet fuels when combusted in flight, the overall effect is a carbon-neutral fuel. This contrasts with jet fuels produced from hydrocarbon fossil sources where the combustion process unlocks the fossil carbon and places it into the atmosphere, in longevity, as aerial carbon - carbon dioxide.
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