4.7 Article

Reversible Diels-Alder and Michael Addition Reactions Enable the Facile Postsynthetic Modification of Metal-Organic Frameworks

期刊

INORGANIC CHEMISTRY
卷 60, 期 7, 页码 4397-4409

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AMER CHEMICAL SOC
DOI: 10.1021/acs.inorgchem.0c02492

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资金

  1. HFSP [RGY0074/2016]
  2. HEC for NRPU [20-1740/RD/10/3368, 20-1799/RD/10-5302, 5922]
  3. LUMS
  4. Australian Research Council (ARC)
  5. Queensland University of Technology (QUT)
  6. Higher Education Commission (HEC) of Pakistan
  7. IRSIP
  8. [TDF-033]

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This study presents multiple approaches for the tandem postsynthetic modification of various metal-organic frameworks, showcasing the use of dienophile and phosphoryl dithioester groups to achieve chemically switchable properties. Additionally, Michael addition reactions were utilized to introduce different molecules into the MOF lattice, expanding the functionality of the MOF materials.
Functionalization of metal-organic frameworks (MOFs) is critical in exploring their structural and chemical diversity for numerous potential applications. Herein, we report multiple approaches for the tandem postsynthetic modification (PSM) of various MOFs derived from Zr(IV), Al(III), and Zn(II). Our current work is based on our efforts to develop a wide range of MOF platforms with a dynamic functional nature that can be chemically switched via thermally triggered reversible Diels-Alder (DA) and hetero-Diels-Alder (HDA) ligations. Furan-tagged MOFs (furan-UiO-66-Zr) were conjugated with maleimide groups bearing dienophiles to prepare MOFs with a chemically switchable nature. As HDA pairs, phosphoryl dithioester-based moieties and cyclopentadiene (Cp)-grafted MOF (Cp-MIL-53-Al) were utilized to demonstrate the cleavage and rebonding of the linkages as a function of temperature. In addition to these strategies, the Michael addition reaction was also applied for the tandem PSM of IRMOF-3-Zn. Maleimide groups were postsynthetically introduced in the MOF lattice, which were further ligated with cysteine-based biomolecules via the thiol-maleimide Michael addition reaction. On the basis of the versatility of the herein presented chemistry, we expect that these approaches will help in designing a variety of sophisticated functional MOF materials addressing diverse applications.

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