Evaluating the Robustness of Metal-Organic Frameworks for Synthetic Chemistry.

ACS Appl Mater Interfaces

Department of Chemistry and Chemical Biology, Cornell University, Ithaca, New York 14850, United States.

Published: April 2021

AI Article Synopsis

  • Metal-organic frameworks (MOFs) are being explored for their potential as sustainable catalysts in synthetic chemistry, but their stability against various chemical reagents is not fully understood.
  • A study systematically evaluates the stability of 17 different MOFs (including carboxylate, salicylate, and azolate types) under 30 varying chemical conditions commonly encountered in organic chemistry using various analytical techniques.
  • Results indicate that azolate MOFs, like Fe(bdp), show high stability in diverse environments, while carboxylate and salicylate MOFs exhibit complementary stabilities against different reagents, thus providing valuable insights for designing more robust MOFs for synthetic applications.

Article Abstract

Metal-organic frameworks (MOFs) are emerging as sustainable reagents and catalysts with promising applications in synthetic chemistry. Although the hydrothermal stabilities of MOFs have been well studied, their robustness toward various reagents, including acids, bases, nucleophiles, electrophiles, oxidants, and reductants, remains poorly characterized. As such, heterogeneous platforms for promising catalysts are generally identified on an basis and have largely been limited to carboxylate frameworks to date. To address these limitations, here we systematically characterize the robustness of 17 representative carboxylate, salicylate, and azolate MOFs toward 30 conditions representing the scope of synthetic organic chemistry. Specifically, analysis of the full width at half-maximum of powder X-ray diffraction patterns, as well as infrared spectroscopy, 77 K N adsorption measurements, and scanning electron microscopy in select cases are employed to appraise framework degradation and dissolution under a range of representative conditions. Our studies demonstrate that azolate MOFs, such as Fe(bdp) (bdp = 4,4'-(1,4-phenylene)bis(pyrazolate)), generally possess excellent chemical stabilities under myriad conditions. In addition, we find that carboxylate and salicylate frameworks possess complementary stabilities, with carboxylate MOFs possessing superior robustness toward acids, electrophiles, and oxidants, and salicylate MOFs demonstrating improved robustness toward bases, nucleophiles, and reductants. The guidelines provided herein should facilitate the rational design of robust frameworks for applications in synthetic chemistry and guide the development of new strategies for the postsynthetic modification of MOFs as well.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8232555PMC
http://dx.doi.org/10.1021/acsami.1c01329DOI Listing

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