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用于超高纯乙烯提纯的柔性坚固金属有机框架中乙烷触发的门控开启

Ethane Triggered Gate-Opening in a Flexible-Robust Metal-Organic Framework for Ultra-High Purity Ethylene Purification.

作者信息

Zhang Lu, Yu Bin, Wang Meng, Chen Yang, Wang Yong, Sun Lin-Bing, Zhang Yue-Biao, Zhang Zhenjie, Li Jinping, Li Libo

机构信息

College of Chemistry and Chemical Engineering, State Key Laboratory of Clean and Efficient Coal Utilization, Taiyuan University of Technology, Taiyuan, 030024, Shanxi, P. R. China.

Shanxi Research Institute of Huairou Laboratory, Taiyuan, 030024, Shanxi, P. R. China.

出版信息

Angew Chem Int Ed Engl. 2025 Feb 10;64(7):e202418853. doi: 10.1002/anie.202418853. Epub 2024 Nov 29.

Abstract

Priority recognition separation of inert and larger ethane molecules from high-concentration ethylene mixtures instead of the traditional thermodynamic or size sieving strategy is a fundamental challenge. Herein, we report ethane triggered gate-opening in the flexible-robust metal-organic framework Zn(ad)(min), the 3-methylisonicotinic acid ligand can spin as a flexible gate when adsorbing the cross-section well-matched ethane molecule, achieving an unprecedented ethane adsorption capacity (62.6 cm g) and ethane/ethylene uptake ratio (3.34) under low-pressure region (0.1 bar and 298 K). The ethane-induced structural transition behavior has been uncovered by a collaboration of single-crystal X-ray diffraction, in situ variable pressure X-ray diffraction and theoretical calculations, elucidating the synergetic mechanism of cross-section matching and multiple supramolecular interactions within the tailor-made pore channels. Dynamic breakthrough experiments have revealed the outstanding separation performance of Zn(ad)(min) during the production of ultra-high purity ethylene (>99.995 %) with a productivity of up to 39.2 L/kg under ambient conditions.

摘要

从高浓度乙烯混合物中优先识别分离惰性且更大的乙烷分子,而非采用传统的热力学或尺寸筛分策略,这是一项根本性挑战。在此,我们报道了在柔性坚固的金属有机框架Zn(ad)(min)中乙烷触发的门控开启,3-甲基异烟酸配体在吸附横截面匹配良好的乙烷分子时可作为柔性门旋转,在低压区域(0.1巴和298K)实现了前所未有的乙烷吸附容量(62.6 cm³/g)和乙烷/乙烯吸收比(3.34)。通过单晶X射线衍射、原位变压X射线衍射和理论计算的合作,揭示了乙烷诱导的结构转变行为,阐明了定制孔道内横截面匹配和多种超分子相互作用的协同机制。动态突破实验表明,在环境条件下,Zn(ad)(min)在生产超高纯乙烯(>99.995%)过程中具有出色的分离性能,生产率高达39.2 L/kg。

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