4.8 Article

Coating the Right Polymer: Achieving Ideal Metal-Organic Framework Particle Dispersibility in Polymer Matrixes Using a Coordinative Crosslinking Surface Modification Method

Journal

ANGEWANDTE CHEMIE-INTERNATIONAL EDITION
Volume 60, Issue 25, Pages 14138-14145

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/anie.202104487

Keywords

composites; coordinative crosslinking; dispersibility; metal– organic framework; surface modification

Funding

  1. National Natural Science Foundation of China [22075181]
  2. ShanghaiTech University
  3. Analytical Instrumentation Center, SPST, ShanghaiTech University [SPST-AIC10112914]
  4. Centre for High-resolution Electron Microscopy (CEM) of SPST at ShanghaiTech University [EM02161943]

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This study presents a generalizable method to modify various metal-organic framework (MOF) surfaces with different polymer materials and achieve a uniform sub-10 nm polymer coating. Experimental results show that when the surface polymer matches the matrix polymer, the dispersion of MOF particles is significantly improved.
This work describes the first generalizable method to modify various metal-organic framework (MOF) surfaces with polyimide, polysulfone, polycarbonate, and polymer of intrinsic microporosity-1 (PIM-1). The method first utilizes electrostatic adsorption to rapidly decorate positively charged MOF surfaces with a layer of negatively charged metal-organic nanocapsule, PgC(5)Cu. After mixing with the polymer, the copper open metal sites on PgC(5)Cu can coordinatively crosslink the polar functional groups on the surface polymer upon thermal activation thereby resulting in the immobilization of a uniform sub-10 nm polymer coating. We quantitatively analyzed the distribution of free path spacing between MOF particles and demonstrated that when the surface polymer matches the matrix polymer, the MOF dispersion was not only visually improved but also found to align perfectly with a theoretically predicted ideal dispersion model where no aggregation driving force was present.

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