4.8 Article

Exploring the Role of Cluster Formation in UiO Family Hf Metal-Organic Frameworks with in Situ X-ray Pair Distribution Function Analysis

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 143, Issue 47, Pages 19668-19683

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jacs.1c06990

Keywords

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Funding

  1. Engineering and Physical Sciences Research Council (EPSRC, U.K.) [1943107]
  2. EPSRC under the Supergen Consortium
  3. School of Chemistry, University of Nottingham
  4. EPSRC [EP/N001583/1]

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The structures of Zr and Hf metal-organic frameworks (MOFs) are sensitive to small changes in synthetic conditions, with the choice of solvent and reaction temperature determining the cluster identity and hence the MOF structure. The nature of Hf metal clusters in different reaction solutions can be tracked during UiO MOF synthesis, leading to insights on the formation mechanism and potential for designing new MOF structures.
The structures of Zr and Hf metal-organic frameworks (MOFs) are very sensitive to small changes in synthetic conditions. One key difference affecting the structure of UiO MOF phases is the shape and nuclearity of Zr or Hf metal clusters acting as nodes in the framework; although these clusters are crucial, their evolution during MOF synthesis is not fully understood. In this paper, we explore the nature of Hf metal clusters that form in different reaction solutions, including in a mixture of DMF, formic acid, and water. We show that the choice of solvent and reaction temperature in UiO MOF syntheses determines the cluster identity and hence the MOF structure. Using in situ X-ray pair distribution function measurements, we demonstrate that the evolution of different Hf cluster species can be tracked during UiO MOF synthesis, from solution stages to the full crystalline framework, and use our understanding to propose a formation mechanism for the hcp UiO-66(Hf) MOF, in which first the metal clusters aggregate from the M-6 cluster (as in fcu UiO-66) to the hcp-characteristic M-12 double cluster and, following this, the crystalline hcp framework forms. These insights pave the way toward rationally designing syntheses of as-yet unknown MOF structures, via tuning the synthesis conditions to select different cluster species.

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