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Updated: Apr 11, 2026

Author Spotlight: Functionalizing Metal-Organic Frameworks: Advancements, Challenges, and the Power of Post-Synthetic Ligand Exchange
Published on: June 23, 2023
Dual Metalation Site Zr-Metal-Organic Frameworks: Controlled Synthesis of Metal-Organic Framework-Bound Proximal
Rashid G Siddique1, Christian J Doonan1, Christopher J Sumby1
1Department of Chemistry and Centre for Advanced Nanomaterials, School of Physics, Chemistry and Earth Sciences, Adelaide University, Adelaide, SA 5005, Australia.
Abstract:
Isolating multiple metal ion species within a confined microenvironment can facilitate cooperative interactions that underpin multielectron processes and synergistic or tandem catalysis. Herein, we report the design and synthesis of three flexible Zr-MOFs (UAM-1001-Py, UAM-1002-Py, and UAM-1003-Py) constructed from a trifunctional linker featuring two distinct coordination sites, based on bispyrazole and pyridyl donors, that can be postsynthetically metalated. Using UAM-1002-Py and UAM-1003-Py, we successfully isolated both cis and trans-PdCl2 isomers within each framework; however, enhanced rigidity along the a-axis in UAM-1003-Py slightly altered the metalation outcome. Reactivity studies with Na[BH(Et)3] revealed selective leaching of cis-PdCl2 from the bispyrazole sites, while the trans-PdCl2 pyridyl sites remained largely intact due to stronger donor coordination, the trans effect, and significant steric protection. Using UAM-1001-Py, site-selective metalation occurred to give a dimer [Ni2(μ-Cl)3(H2O)Cl] with vacant pyridyl sites, while a [Rh2(μ-CO)3Cl2] dimer at bispyrazole sites and a monomeric [Rh(CO)2Cl] complex at the pyridyl site were formed simultaneously. Sequential metalation of UAM-1001-Py afforded a heterometallic system, with a [Ni2(μ-Cl)3(H2O)Cl] dimer binding the bispyrazole site and a [Rh(CO)2Cl] species at the pyridyl site. This work establishes a modular approach for advancing precise control over metal incorporation to construct homo and heteronuclear multimetallic species that underpin complex chemical transformations.
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