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Updated: Mar 19, 2026

Electrophoretic Crystallization of Ultrathin High-performance Metal-organic Framework Membranes
Published on: August 16, 2018
Probing Induced-Fit Acetylene Adsorption and Separation in a Flexible Ultramicroporous Framework by Multinuclear
Tahereh Azizivahed1, Jingyan Liu1, Yining Huang1
1Department of Chemistry, The University of Western Ontario, 1151 Richmond Street, London, Ontario N6A 5B7, Canada.
Abstract:
This study investigates the molecular-level-induced-fit adsorption of acetylene (C2H2) and carbon dioxide (CO2) in sql-SIFSIX-bpe-Zn, a flexible, anion-pillared ultramicroporous metal-organic framework (MOF). Sql-SIFSIX-bpe-Zn undergoes distinct pressure-dependent phase transitions, enabling a high selectivity for C2H2 over CO2 and ethylene (C2H4). However, the unclear thermodynamic and kinetic mechanisms underlying this behavior, as well as limitations in models derived from single-crystal X-ray diffraction (SCXRD), necessitate further investigation. Using in situ multinuclear solid-state NMR (SSNMR) spectroscopy with isotopically enriched C2D2 and 13CO2, we directly probed gas adsorption, framework dynamics, and competitive uptake in sql-SIFSIX-bpe-Zn across 153-298 K. Variable-temperature 2H SSNMR revealed a C2D2-induced pore opening between 253 and 233 K, marking a cooperative structural transformation process that maximizes acetylene adsorption. Complementary 13C and 19F SSNMR spectra show that both the SiF62- pillars and bpe linkers participate in host-guest interactions through C-D···F hydrogen bonding and linker reorientation, while CO2 remains bound near the linker region. In mixed-gas systems, CO2 assists pore activation, but acetylene dominates adsorption, confirming its stronger affinity and selective uptake. These results provide a molecular-level mechanism for induced-fit adsorption and competitive selectivity in flexible hybrid ultramicroporous materials, guiding the design of next-generation adaptive MOF sorbents.
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