Direct Conversion of CO 2 into Ethylene Over Fe-Decorated Hierarchical Molybdenum Carbide: Tailoring Activity and Stability

Himanshu Raghav, L. Konathala, N. Mishra, Bhanu Joshi, R. Goyal, Ankit Agrawal, Bipul Sarkar
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Abstract

In the past few years, the production olefin from various resources, particularly from carbon-rich sources, such as crude oil, natural gas, coal, and biomass, has received considerable attention. This study presented the production of light olefins by conducting CO2 hydrogenation through reverse water-gas shift and modified Fischer–Tropsch synthesis by employing a Fe-decorated large surface molybdenum carbide catalyst. A novel strategy was adopted for the synthesis of large surface mesoporous molybdenum carbide by using a hard template. A theoretical loading limit of Fe nanoparticles, calculated using density functional theory, was decorated over β-Mo2C through simple wetness impregnation. The trans isomers of Fe-doped β-Mo2C exhibited higher symmetry and were energetically slightly more stable for the hydrogenation of CO2 into light olefins than the cis isomers. Under the optimized condition, Fe(0.5)-Mo2C showed 7.3% CO2 conversion with 79.4% C2= olefins.
铁修饰层状碳化钼上CO 2直接转化为乙烯:裁剪活性和稳定性
在过去的几年里,从各种资源,特别是从富含碳的资源,如原油、天然气、煤和生物质中生产烯烃受到了相当大的关注。本文研究了以铁装饰的大表面碳化钼催化剂为催化剂,通过逆水气变换进行CO2加氢制备轻烯烃和改性费托合成。采用硬模板法合成大表面介孔碳化钼。利用密度泛函理论计算了铁纳米粒子的理论载荷极限,并通过简单的湿浸渍在β-Mo2C上进行了修饰。fe掺杂β-Mo2C的反式异构体表现出更高的对称性,并且在二氧化碳加氢成轻烯烃的过程中能量稳定性略高于顺式异构体。在优化条件下,Fe(0.5)-Mo2C的CO2转化率为7.3%,C2=烯烃转化率为79.4%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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