AI Article Synopsis

  • Researchers developed a high-performance metal-organic framework (MOF) membrane with enhanced molecular separation capabilities, overcoming challenges related to defects and water stability during its fabrication.
  • The process involved a confined-coordination strategy that controlled the growth rate of MOF crystals, leading to a defect-free structure and allowing for precise molecular sieving.
  • The resulting Zr-MOF membrane demonstrated significantly improved separation efficiencies, with high permeance and selectivity for gases and salts, outperforming existing membrane technologies.

Article Abstract

Metal-organic framework (MOF) membranes with rich functionality and tunable pore system are promising for precise molecular separation; however, it remains a challenge to develop defect-free high-connectivity MOF membrane with high water stability owing to uncontrollable nucleation and growth rate during fabrication process. Herein, we report on a confined-coordination induced intergrowth strategy to fabricate lattice-defect-free Zr-MOF membrane towards precise molecular separation. The confined-coordination space properties (size and shape) and environment (water or DMF) were regulated to slow down the coordination reaction rate via controlling the counter-diffusion of MOF precursors (metal cluster and ligand), thereby inter-growing MOF crystals into integrated membrane. The resulting Zr-MOF membrane with angstrom-sized lattice apertures exhibits excellent separation performance both for gas separation and water desalination process. It was achieved H permeance of ~1200 GPU and H/CO selectivity of ~67; water permeance of ~8 L ⋅ m ⋅ h ⋅ bar and MgCl rejection of ~95 %, which are one to two orders of magnitude higher than those of state-of-the-art membranes. The molecular transport mechanism related to size-sieving effect and transition energy barrier differential of molecules and ions was revealed by density functional theory calculations. Our work provides a facile approach and fundamental insights towards developing precise molecular sieving membranes.

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Source
http://dx.doi.org/10.1002/anie.202405676DOI Listing

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