Jiang Xue, Wang Yu, Wang Hui, Cheng Lu, Cao Jian-Wei, Wang Jin-Bo, Yang Rong, Zhang Dong-Hui, Zhang Run-Ye, Yang Xiu-Bo, Wang Su-Hang, Zhang Qiu-Yu, Chen Kai-Jie
Key Laboratory of Special Functional and Smart Polymer Materials of Ministry of Industry and Information Technology, Xi'an Key Laboratory of Functional Organic Porous Materials, School of Chemistry and Chemical Engineering, Northwestern Polytechnical University, Xi'an, Shaanxi, China.
School of Aeronautics, Northwestern Polytechnical University, Xi'an, Shaanxi, China.
Nat Commun. 2025 Jan 15;16(1):694. doi: 10.1038/s41467-025-55991-y.
Separation of multi-component mixtures in an energy-efficient manner has important practical impact in chemical industry but is highly challenging. Especially, targeted simultaneous removal of multiple impurities to purify the desired product in one-step separation process is an extremely difficult task. We introduced a pore integration strategy of modularizing ordered pore structures with specific functions for on-demand assembly to deal with complex multi-component separation systems, which are unattainable by each individual pore. As a proof of concept, two ultramicroporous nanocrystals (one for CH-selective and the other for CO-selective) as the shell pores were respectively grown on a CH-selective ordered porous material as the core pore. Both of the respective pore-integrated materials show excellent one-step ethylene production performance in dynamic breakthrough separation experiments of CH/CH/CH and CO/CH/CH gas mixture, and even better than that from traditional tandem-packing processes originated from the optimized mass/heat transfer. Thermodynamic and dynamic simulation results explained that the pre-designed pore modules can perform specific target functions independently in the pore-integrated materials.
以节能方式分离多组分混合物在化学工业中具有重要的实际意义,但极具挑战性。特别是,在一步分离过程中靶向同时去除多种杂质以纯化所需产物是一项极其困难的任务。我们引入了一种孔整合策略,即通过模块化具有特定功能的有序孔结构进行按需组装,以处理复杂的多组分分离系统,而单个孔无法实现这些系统的分离。作为概念验证,两种超微孔纳米晶体(一种对CH有选择性,另一种对CO有选择性)作为壳层孔分别生长在一种对CH有选择性的有序多孔材料上作为核心孔。在CH/CH/CH和CO/CH/CH气体混合物的动态突破分离实验中,两种各自的孔整合材料均表现出优异的一步乙烯生产性能,甚至优于源自优化质量/热传递的传统串联填充过程。热力学和动力学模拟结果表明,预先设计的孔模块在孔整合材料中可以独立执行特定的目标功能。