4.8 Article

Applying reticular synthesis to the design of Cu-based MOFs with mechanically interlocked linkers

Journal

NANO RESEARCH
Volume 14, Issue 2, Pages 417-422

Publisher

TSINGHUA UNIV PRESS
DOI: 10.1007/s12274-020-3123-z

Keywords

reticular chemistry; metal-organic frameworks; mechanically interlocked molecules; rotaxane

Funding

  1. Natural Sciences and Engineering Research Council of Canada [101694]
  2. Canada Research Chair
  3. NSERC
  4. Canadian Foundation for Innovation
  5. Ontario Innovation Trust
  6. University of Windsor for the development and maintenance of the SSNMR centre
  7. Florida State University
  8. National High Magnetic Field Laboratory (NHMFL)
  9. National Science Foundation Cooperative Agreement [DMR-1644779]
  10. State of Florida

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The study explores the concept of robust dynamics by incorporating mechanically interlocked molecules into metal-organic framework materials, allowing large amplitude motions. New T-shaped linkers were designed and synthesized to create various MOFs with specific structures, demonstrating the potential for creating MOFs with diverse functions and dynamics.
The concept of robust dynamics describes the incorporation of mechanically interlocked molecules (MIMs) into metal-organic framework (MOF) materials such that large amplitude motions (e.g., rotation or translation of a macrocycle) can occur inside the free volume pore of the MOF. To aid in the preparation of such materials, reticular synthesis was used herein to design rigid molecular building blocks with predetermined ordered structures starting from the well-known MOF NOTT-101. New linkers were synthesized that have a T-shape, based on a triphenylene tetra-carboxylate strut, and their incorporation into Cu(II)-based MOFs was investigated. The single-crystal structures of three new MOFs, UWCM-12 (fof), beta-UWCM-13 (loz), UWCM-14 (lil), with naked T-shaped linkers were determined; beta-UWCM-13 is the first reported example of the loz topology. A fourth MOF, UWDM-14 (lil) is analogous to UWCM-14 (lil) but contains a [2]rotaxane linker. Variable-temperature, H-2 solid-state NMR was used to probe the dynamics of a 24-membered macrocycle threaded onto the MOF skeleton.

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