Lijun Zhang, Teng Li, Wenjie Xiang, Zhiwei Ye, Luyao Wu, Wei Xia, Hao Huang, Zhihao Liu, Xiuyun Jiang, Guangbo Liu, Zhiliang Jin, Weizhe Gao, Hongliang Li, Jie Zeng, Noritatsu Tsubaki
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引用次数: 0
摘要
由于两个主要的限制,从CO2加氢直接合成具有高时空产率(STY)的对二甲苯(p-X)仍然是一个重大挑战:Anderson-Schulz-Flory分布限制了C8的选择性为~ 6.8%,热力学平衡限制了二甲苯异构体中p-X的含量为15-25%。在此,我们报道了一种复合催化剂,K-FeMn/空心ZSM-5,通过整合两种协同催化功能,可以有效地将CO2加氢成p-X。K-FeMn组分促进了逆向水气变换反应和费托合成烯烃过程,生成轻质烯烃中间体。这些中间体随后通过低聚、环化和芳构化在中空ZSM-5沸石中转化为p-X。中空的ZSM-5具有适合于p-X扩散的孔径,而其钝化的外部酸位有效地抑制了p-X在沸石外部的异构化和烷基化。因此,K-FeMn/空心ZSM-5催化剂的p-X STY为41.7 g kgcat-1 h-1,二氧化碳转化率为46.1%,超过了之前报道的所有值。这项工作展示了一种新的方法,通过特定的催化剂设计和二氧化碳加氢成p-X过程的空间分离来克服局部热力学平衡。
Direct Synthesis of para-Xylene from CO2 Hydrogenation with a Record-High Space-Time Yield.
The direct synthesis of para-xylene (p-X) from CO2 hydrogenation with high space-time yield (STY) remains a significant challenge due to two primary limitations: the Anderson-Schulz-Flory distribution, which restricts the C8 selectivity to ∼6.8 C%, and the thermodynamic equilibrium, which confines the p-X content among xylene isomers to 15-25%. Herein, we report a composite catalyst, K-FeMn/Hollow ZSM-5, that enables the efficient hydrogenation of CO2 to p-X by integrating two synergistic catalytic functions. The K-FeMn component facilitates the reverse water-gas shift reaction and Fischer-Tropsch synthesis to olefin processes, generating light olefin intermediates. These intermediates are subsequently transformed to p-X within the hollow ZSM-5 zeolite through oligomerization, cyclization, and aromatization. The hollow ZSM-5 features a suitable pore size to facilitate p-X diffusion only, while its passivated external acid sites effectively suppress isomerization and alkylation of p-X outside the zeolite. As a result, the K-FeMn/Hollow ZSM-5 catalyst achieves a p-X STY of 41.7 g kgcat-1 h-1 at a CO2 conversion of 46.1%, surpassing all previously reported values. This work demonstrates a novel approach to overcome the local thermodynamic equilibria by specific catalyst design and the spatial separation of processes toward CO2 hydrogenation into p-X.
期刊介绍:
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