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Selective C2+ alcohol synthesis by CO2 hydrogenation via a reaction-coupling strategy

机译:通过反应偶联策略,通过CO2氢化选择性C2+酒精合成

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Higher alcohol synthesis (HAS) from non-petroleum carbon resources (a mixture of H2 and CO2) is an attractive but challenging research target. This reaction still suffers from poor higher alcohol (HA) selectivity due to the complexity in the reaction network and uncontrollability in C–C coupling. Herein, we employed a reaction-coupling strategy to achieve selective conversion of CO2 to HAs over multifunctional catalysts composed of a HAS primary component (KCuFeZn) and CH3OH/CO synthesis promoting component (e.g., CuZnAlZr, ZnZr, ZnCrAl). A linear correlation between HA STY over multifunctional catalysts and CH3OH + CO yield over promoting components confirms the key role of extra CHxO*/CO* species in HAS catalysis. After screening, an optimized multifunctional catalyst composed of 4.7KCuFeZn and CuZnAlZr in close proximity realizes nearly 2 times higher HA selectivity (CO-free, 33.0% versus 17.4%) and HA STY (84.0 mg gKCFZ−1 h−1versus 42.1 mg gKCFZ−1 h−1) than the sole 4.7KCFZ catalyst at the same space velocity on the basis of 4.7KCFZ. Notably, the close proximity of two components by mortar mixing gives >55% selectivity to high value-added C2+ products (HA and light olefins). It is found that the fast migration of CO*/CHxO* species can improve HAS activity via the synergy of two components at the interfaces. Hopefully, this work would provide a promising avenue to improve HAS activity over a multifunctional catalyst affording multiple types of active sites via a reaction-coupling strategy.
机译:非高碳资源(H2和CO2的混合物)来自较高的酒精合成(HAS)是一个有吸引力但具有挑战性的研究目标。由于反应网络中的复杂性以及C – C偶联的不可控制性,该反应仍然患有较高的酒精(HA)选择性。在本文中,我们采用了反应偶联策略来实现CO2的选择性转化为具有由A的主要成分(KCUFEZN)和CH3OH/CO合成促进成分组成的多功能催化剂(例如Cuznalzr,Znzr,Zncral,Zncral)。 HA型在多功能催化剂上的线性相关性与促进成分的CH3OH + CO产量之间的线性相关性证实了额外的CHXO*/CO*物种在催化中的关键作用。筛选后,通过4.7kcufezn和Cuznalzr组成的优化多功能催化剂紧邻近端的近距离催化剂近接近HA的选择性近2倍(无共二线,33.0%对17.4%)和HA STY(84.0 mg gkcfz-gkcfz-1 H-1 h-1 vers 42.1 mg gkcfz- gkcfz-1 mg gkcfz-1 mg gkcfz- 1 H − 1)比根据4.7kCFZ在相同空间速度处的鞋底4.7kCFZ催化剂。值得注意的是,两种组件通过砂浆混合的近距离近距离可对于高增值C2+产品(HA和Light Olefins)的选择性> 55%。发现Co/chxo*物种的快速迁移可以改善通过界面的两个组件的协同作用。希望这项工作能够为改进的途径提供有希望的途径,可以通过反应偶联策略提供多功能催化剂,从而为多种类型的活动站点提供活动。

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