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首页> 外文期刊>ACS applied materials & interfaces >Engineered High Aspect Ratio Vertical Nanotubes as a Model System for the Investigation of Catalytic Methanol Synthesis Over Cu/ZnO
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Engineered High Aspect Ratio Vertical Nanotubes as a Model System for the Investigation of Catalytic Methanol Synthesis Over Cu/ZnO

机译:设计的高纵横比垂直纳米管作为模型系统,用于研究Cu / ZnO上催化甲醇合成

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摘要

Catalytically synthesized methanol from H2 and CO2 using porous Cu/ZnO aggregates is a promising, carbon neutral, and renewable alternative to replace fossil fuel based transport fuels. However, the absence of surface-engineered model systems to understand and improve the industrial Cu/ ZnO catalyst poses a big technological gap in efforts to increase industrial methanol conversion efficiency. In this work, we report a novel process for the fabrication of patterned, vertically aligned high aspect ratio 1D nanostruc- tures on Si that can be used as an engineered model catalyst. The proposed strategy employs near-field phase shift lithography (NF-PSL), deep reactive ion etching (DRIE), and atomic layer deposition (ALD) to pattern, etch, and coat Si wafers to produce high aspect ratio 1D nanostructures. Using this method, we produced a model system consisting of high aspect ratio Cu-decorated ZnO nanotubes (NTs) to investigate the morphological effects of ZnO catalyst support in comparison to the planar Cu/ZnO catalyst in terms of the catalytic reactions. The engineered catalysts performed 70 times better in activating CO2 than the industrial catalyst. In light of the obtained results, several important points are highlighted, and recommendations are made to achieve higher catalytic performance.
机译:使用多孔Cu / ZnO聚集体由H2和CO2催化合成甲醇是一种有前途的,碳中和的,可再生的替代品,可替代基于化石燃料的运输燃料。然而,由于缺乏用于理解和改进工业Cu / ZnO催化剂的表面工程模型系统,在提高工业甲醇转化效率的努力中存在很大的技术差距。在这项工作中,我们报告了一种在Si上制造图案化的,垂直排列的高深宽比1D纳米结构的新工艺,该工艺可用作工程模型催化剂。提出的策略采用近场相移光刻(NF-PSL),深反应离子刻蚀(DRIE)和原子层沉积(ALD)来对硅晶片进行图案化,蚀刻和涂覆,以产生高深宽比的1D纳米结构。使用这种方法,我们制作了一个由高长宽比的铜修饰的ZnO纳米管(NTs)组成的模型系统,以研究与平面Cu / ZnO催化剂相比在催化反应方面ZnO催化剂载体的形态学效应。工程催化剂在活化CO2方面的性能比工业催化剂高70倍。根据获得的结果,突出了几个要点,并提出了实现更高催化性能的建议。

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