组分(热力学)
分离(统计)
多孔性
多孔介质
串联
材料科学
传质
气体分离
过程集成
过程(计算)
分离过程
介孔材料
工艺工程
纳米技术
化学工程
化学
计算机科学
催化作用
色谱法
物理
有机化学
热力学
工程类
操作系统
复合材料
膜
机器学习
生物化学
作者
Xue Jiang,Yu Wang,Wang Hui,Chang Lu,Jianwei Cao,Jinbo Wang,Rong Yang,Donghui Zhang,Runye Zhang,Xiubo Yang,Shihao Wang,Qiuyu Zhang,Kai‐Jie Chen
标识
DOI:10.1038/s41467-025-55991-y
摘要
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 C2H2-selective and the other for CO2-selective) as the shell pores were respectively grown on a C2H6-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 C2H2/C2H4/C2H6 and CO2/C2H4/C2H6 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.
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