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首页> 外文期刊>ACS catalysis >Heterogeneous Catalytic Conversion of Dry Syngas to Ethanol and Higher Alcohols on Cu-Based Catalysts
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Heterogeneous Catalytic Conversion of Dry Syngas to Ethanol and Higher Alcohols on Cu-Based Catalysts

机译:铜基催化剂上干法合成气向乙醇和高级醇的非均相催化转化

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摘要

Ethanol and higher alcohols have been identified as potential fuel additives or hydrogen carriers for use in fuel cells. One method of ethanol production is catalytic conversion of syngas (a mixture of CO, H2, CO2, and H2O), derived from biomass, coal, or natural gas. Thermodynamics of CO hydrogenation shows that ethanol is favored as the sole product at conditions of practical interest, but if methane is allowed as product in this analysis, essentially no ethanol is formed at equilibrium. The kinetics of ethanol formation must therefore be maximized. Although rhodium-based catalysts give C2~+ oxygenates with high selectivity, their prohibitive cost has spurred research on less expensive copper-based alternatives. Copperbased catalysts require an optimum amount of promoter to suppress undesired reactions and maximize the yields of ethanol and higher alcohols. Common promoters include alkali, transition metals and their oxides, and rare earth oxides. Careful selection of operating variables is also necessary to achieve the desired activity and selectivity. This review describes the effects of promoters, supports, and operating conditions on the performance of copper-based catalysts for conversion of dry syngas to ethanol and higher alcohols. Proposed mechanisms from the literature for ethanol and higher-alcohol synthesis are outlined.
机译:乙醇和高级醇已被确定为用于燃料电池的潜在燃料添加剂或氢载体。乙醇生产的一种方法是催化转化衍生自生物质,煤或天然气的合成气(CO,H2,CO2和H2O的混合物)。 CO氢化的热力学表明,在实际应用条件下,乙醇是唯一的产物,但如果在此分析中以甲烷为产物,则在平衡状态下基本上不会形成乙醇。因此必须使乙醇形成的动力学最大化。尽管铑基催化剂可以高选择性地提供C2〜+含氧化合物,但其过高的成本刺激了对廉价铜基替代品的研究。铜基催化剂需要最佳量的助催化剂,以抑制不希望的反应并使乙醇和高级醇的产率最大化。常见的促进剂包括碱,过渡金属及其氧化物和稀土氧化物。为实现所需的活性和选择性,还必须仔细选择操作变量。这篇综述描述了助催化剂,载体和操作条件对铜基催化剂性能的影响,该催化剂用于将干合成气转化为乙醇和高级醇。概述了文献中提出的乙醇和高级醇合成的机理。

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