设计具有双功能的柔性金属-有机骨架的微孔环境以促进乙烯从三元混合物中分离。

Kang Wang, Yao Jiang, Hui Zhang, Shaojun Jia, Qi Wang, Peng Cui, Thamraa AlShahrani, Shengqian Ma
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引用次数: 0

摘要

从二氧化碳(CO2)和乙炔(C2H2)混合物中分离乙烯(C2H4)具有重要的工业意义,但仍然是一个关键的挑战。在这里,我们报道了合理设计的柔性金属有机框架(FMOF),具有特殊设计的双功能微孔环境,可以促进C2H4从三元混合物中一步分离。吸附等温线和动态突破试验提供了实验证据,证实了这种FMOF在C2H4上对CO2和C2H2的选择性吸附,以及它从CO2/C2H2/C2H4三元混合物中分离C2H4的能力。理论计算和模拟为FMOF的柔性吸附过程和分离机制提供了重要的见解。结合在FMOF中的双功能提供了异常强的CO2和C2H2结合,但抑制C2H4,这反过来又使CO2/C2H4和C2H2/C2H4具有高吸附选择性。该FMOF在从混合气体中分离C2H4方面具有很高的工业应用潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Engineering the Microporous Environment of Flexible Metal-Organic Frameworks with Bifunctionality for Promoting the Separation of Ethylene from a Ternary Mixture.

The separation of ethylene (C2H4) from mixtures with carbon dioxide (CO2) and acetylene (C2H2) is of great industrial importance but remains a critical challenge. Here, we report that a rationally designed flexible metal-organic framework (FMOF), featuring a specifically engineered microporous environment with bifunctionality, can promote the efficient one-step separation of C2H4 from a ternary mixture. Adsorption isotherms and dynamic breakthrough tests provide experimental evidence confirming the selective adsorption of CO2 and C2H2 over C2H4 on such a FMOF, as well as its ability to separate C2H4 from a CO2/C2H2/C2H4 ternary mixture. Theoretical calculations and simulations provide critical insights into the flexible adsorption process and the separation mechanism of the FMOF. The bifunctionality incorporated in FMOF provides exceptionally strong binding of CO2 and C2H2 but inhibition of C2H4, which, in turn, enables high adsorption selectivity for CO2/C2H4 and C2H2/C2H4. This FMOF has high potential for industrial applications in the separation of C2H4 from gas mixtures.

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