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锌铬铝氧化物组成对合成气制烃的影响。

Influence of the ZnCrAl Oxide Composition on the Formation of Hydrocarbons from Syngas.

作者信息

Kull Tobias, Wiesmann Thomas, Wilmsen Andrea, Purcel Maximilian, Muhler Martin, Lohmann Heiko, Zeidler-Fandrich Barbara, Apfel Ulf-Peter

机构信息

Inorganic Chemistry I, Ruhr-Universität Bochum, Universitätsstraße 150, D-44780 Bochum, Germany.

Fraunhofer UMSICHT, Osterfelder Straße 3, D-46047 Oberhausen, Germany.

出版信息

ACS Omega. 2022 Nov 16;7(47):42994-43005. doi: 10.1021/acsomega.2c05225. eCollection 2022 Nov 29.

Abstract

The conversion of syngas into value-added hydrocarbons gains increasing attention due to its potential to produce sustainable platform chemicals from simple starting materials. Along this line, the "OX-ZEO" process that combines a methanol synthesis catalyst with a zeolite, capable of catalyzing the methanol-to-hydrocarbon reaction, was found to be a suitable alternative to the classical Fischer-Tropsch synthesis. Hitherto, understanding the mechanism of the OX-ZEO process and simultaneously optimizing the CO conversion and the selectivity toward a specific hydrocarbon remains challenging. Herein, we present a comparison of a variety of ZnCrAl oxides with different metal ratios combined with a H-ZSM-5 zeolite for the conversion of syngas to hydrocarbons. The effect of aluminum on the catalytic activity was investigated for ZnCrAl oxides with a Zn/Cr ratio of 4:1, 1:1, and 1:2. The product distribution and CO conversion were found to be strongly influenced by the Zn/Cr/Al ratio. Although a ratio of Zn/Cr of 1:2 was best to produce lower olefins and aromatics, with aromatic selectivities of up to 37%, catalysts with a 4:1 ratio revealed high paraffin selectivity up to 52%. Notably, a distinct effect of aluminum in the oxide lattice on the catalytic activity and product selectivity was observed, as a higher Al content leads to a lower CO conversion and a changed product spectrum. We provide additional understanding of the influence of different compositions of ZnCrAl oxides on their surface properties and the catalytic activity in the OX-ZEO process. Furthermore, the variation of the zeolite component supports the important role of the channel topology of the porous support material for the hydrocarbon production. In addition, variation of the gas hourly space velocity showed a correlation of contact time, CO conversion, and hydrocarbon selectivity. At a gas hourly space velocity of 4200 mL/g h, CO conversion as high as 44% along with a CO selectivity of 42% and a lower paraffin (C -C ) selectivity of 41% was observed.

摘要

由于合成气转化为增值碳氢化合物具有从简单原料生产可持续平台化学品的潜力,因此越来越受到关注。在此背景下,“OX-ZEO”工艺将甲醇合成催化剂与能够催化甲醇制烃反应的沸石相结合,被认为是传统费托合成的合适替代方法。迄今为止,理解OX-ZEO工艺的机理并同时优化CO转化率和对特定碳氢化合物的选择性仍然具有挑战性。在此,我们比较了多种不同金属比例的ZnCrAl氧化物与H-ZSM-5沸石用于合成气转化为碳氢化合物的性能。研究了Al对Zn/Cr比为4:1、1:1和1:2的ZnCrAl氧化物催化活性的影响。发现产物分布和CO转化率受Zn/Cr/Al比的强烈影响。尽管Zn/Cr比为1:2最有利于生产低碳烯烃和芳烃,芳烃选择性高达37%,但Zn/Cr比为4:1的催化剂显示出高达52%的高石蜡选择性。值得注意的是,观察到氧化物晶格中Al对催化活性和产物选择性有明显影响,因为较高的Al含量导致较低的CO转化率和改变的产物谱。我们进一步了解了不同组成的ZnCrAl氧化物对其表面性质和OX-ZEO工艺中催化活性的影响。此外,沸石组分的变化支持了多孔载体材料的通道拓扑结构对烃类生产的重要作用。此外,气体时空速的变化显示了接触时间、CO转化率和烃类选择性之间的相关性。在气体时空速为4200 mL/g h时,观察到CO转化率高达44%,CO选择性为42%,低碳石蜡(C -C )选择性为41%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d5d2/9713791/36010928a6cc/ao2c05225_0002.jpg

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