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Highly porous metal-organic framework glass design and application for gas separation membranes.

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Peer-reviewed

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Abstract

Crystalline metal-organic frameworks (MOFs) exhibit enormous potential application in gas separation, thanks to their highly porous structures and precise pore size distributions. Nevertheless, the inherent limitations in mechanical stability of crystalline MOFs cause challenges in processing MOF powders into bulky structures, particularly for membrane filtrations. Melt-quenched MOF glasses boast excellent processability due to liquid-like properties. However, the melting process diminishes the inherent porosity, leading to reduced gas adsorption capacities and lower gas diffusion coefficients. In this work, we demonstrated that enhancing the porosity of MOF glasses is achievable through topological engineering on the crystalline precursors. Crystalline zeolitic imidazolate frameworks (ZIFs) with large 12-membered rings pores, including AFI and CAN topology, were synthesized by using both structure-directing agents and mixed organic ligands. The large pores are partially preserved in the melt-quenched glass as evidenced by high-pressure CO2 absorption at 3000 kPa. The agAFI-[Zn(Im)1.68(bIm)0.32] glass was then fabricated into self-supported membranes, which shows high gas separation performance, for example, CO2 permeance of 3.7 × 104 GPU with a CO2/N2 selectivity of 14.8.

Description

Acknowledgements: S.L. acknowledges Natural Science Foundation of China (21606212) and China Scholarship Council (CSC). TDB would like to thank the Royal Society for a University Research Fellowship and Research Grant (URF\R\211013 and RGS\R2\212221). Z.Q. acknowledges Natural Science Foundation of China (22122810). J.H. acknowledges the financial support from the Australian Research Council (FT210100589 and DP230101901), the University of Queensland, ARC Centre of Excellence for Green Electrochemical Transformation of Carbon Dioxide (CE230100017) funded by the Australian Government. S.Y. acknowledges the Natural Science Research Project of Education Department of Anhui Province (2022AH030135), Ph.D. research funding of Suzhou University (2021BSK041) and China Scholarship Council (CSC). The authors acknowledge the I15-1 beamline at the Diamond Light Source, UK, and the BL14B1 beamline at the Shanghai synchrotron radiation facility (SSRF), China.

Journal Title

Nat Commun

Conference Name

Journal ISSN

2041-1723
2041-1723

Volume Title

16

Publisher

Springer Nature

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Except where otherwised noted, this item's license is described as http://creativecommons.org/licenses/by-nc-nd/4.0/
Sponsorship
Royal Society (URF\R\211013 and RGS\R2\212221)