Controllable Strategy of Metal-Organic Framework Structural Stability: Regulation of Ligand Electronegativity by Esterification.

Adv Sci (Weinh)

Beijing National Laboratory for Molecular Sciences, Chinese Academy of Sciences (CAS), Beijing, 100190, China.

Published: December 2024

AI Article Synopsis

  • MOFs (metal-organic frameworks) require controlled structural stability for their applications, prompting the development of a new strategy to adjust this stability by modifying ligands' electronic environment.
  • A novel Zr-MOF (Zr-TA) is created by synthesizing hydroxyl groups and then converting them to ester groups, which enhances structural stability by weakening metal-ligand coordination.
  • This approach not only improves the binding strength of MOFs with collagen fibers, increasing hydrothermal stability by 82.6%, but also presents opportunities for dynamic structural adjustments in various application fields.

Article Abstract

Structural stability of metal-organic framework (MOF) is crucial for their application, and thus it is of great significance to construct MOFs with controllable structural stability. Herein, a strategy based on adjusting the electronic environment of ligands to regulate the structure stability of MOF is proposed. Briefly, a novel Zr-MOF (Zr-TA) with hydroxyl groups is synthesized. The hydroxyl groups are esterified to obtain ester groups with stronger electronegativity, which can weaken the strength of coordination between metal ion and ligand, thereby regulating the structure stability of the Zr-MOF. Notably, this strategy can achieve controllable adjustment of the structure by adding modifiers at the appropriate time. In this work, this strategy is used to greatly improving the binding ability of MOF and collagen fibers, the hydrothermal stability of crosslinked collagen fibers is enhanced by 82.6%. Surprisingly, this strategy can also be applied to other application fields that require dynamic changes in structural stability of MOF. It will open up a new pathway for controlling the structural stability and application performance of MOF.

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Source
http://dx.doi.org/10.1002/advs.202413853DOI Listing

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