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Updated: Sep 16, 2025

Electrophoretic Crystallization of Ultrathin High-performance Metal-organic Framework Membranes
Published on: August 16, 2018
High H2 Recovery Properties of Carbon Molecular Sieve Membranes with Sub-Nanometer Precision Derived from Dual
Mingwei Cai1,2, Huahui Liang1, Fuhui Liang1
1School of Materials and Energy, Guangdong University of Technology, Guangzhou, 510006, P.R. China.
Abstract:
Energy-efficient purification technologies are essential for advancing a sustainable hydrogen economy. Carbon molecular sieve membranes (CMSMs) have emerged as promising candidates; however, achieving precise sub-Angstrom micropore control and ensuring structural stability remain significant challenges. Here, we introduce a dual cross-linked strategy to engineer microporosity of the resulting CMSMs by utilizing a decarbonylated 3,5-diaminobenzoic acid (DABA)-induced rigid network (Type A) in conjunction with a sulfur bond-induced flexible network (Type B). The 6F-D-S-CMS membrane exhibits a record-high H2 permeability of 3464 Barrer with H2/CH4 selectivity of 3807, surpassing the Robeson upper bound. Upon pyrolysis at 850 °C, the 6F-D-S-CMS-850 membrane achieves exceptional selectivity values: H2/CH4 at 6538, H2/N2 at 1634, and H2/CO2 at 149-outperforming most reported CMS membranes. Molecular dynamics simulations revealed that the Type B network suppressed CH4 adsorption (3.6 cm3 g-1 versus 6.2 cm3 g-1) and significantly enhanced the small pore volume ratio (VH2/VCH4: 10.3 versus 2.1) during carbonization, thereby eliminating non-selective pathways and reducing inter-skeletal spacing (4.09 Å versus 3.78 Å), which enables precise molecular sieving. This rigid-flexible cross-linked strategy for CMSMs establishes a scalable blueprint for next-generation hydrogen production.

