Molecular-level insight into water adsorption and projected atmospheric water harvesting performance in a hydrolytically stable MOF.
basic_science · Level V
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- Record sourced from PubMed, PMID 42693148.
- Also identified by DOI 10.1038/s41467-026-76301-0.
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Abstract
Sorption-based atmospheric water harvesting (AWH) promises a solution to the global challenge of water scarcity and, despite the increasing number of promising AWH materials, there remains a need for insight into pore-filling mechanisms and the hydrolytic stability of such desiccants. Here, we report two bnn-topology rod building block (RBB) MOFs, M<sub>2</sub>F<sub>2</sub>(tzba)(bpy)<sub>2</sub>, tzba = 4-(1H-tetrazol-5-yl)benzoate, M = Co or Ni. The MOFs, bnn-1-Co and previously reported bnn-1-Ni, respectively, are built from an RBB comprising three bridging moieties, fluoride, carboxylate and tetrazolate. bnn-1-Ni exhibits promising material-level AWH performance and hydrolytic stability driven by a low uptake threshold (<20% RH), little hysteresis, fast loading kinetics, low regeneration temperature (≤ 60 °C), cycling stability (> 100 cycles) and projected gravimetric water productivity of 0.3044 wt% min<sup>-1</sup> (4.38 kg<sup>-1</sup> kg<sup>-1</sup> d<sup>-1</sup>) under simulated temperature swing conditions. Loading of water molecules, visualised at the molecular level through single-crystal X-ray diffraction (SCXRD) and density functional theory (DFT) calculations, revealed a binding site with multiple hydrogen bonds for the first water molecule (adsorption energy -75 kJ mol<sup>-1</sup>) that anchors formation of water layers (average adsorption energy -59 kJ mol<sup>-1</sup>). bnn-1-Co is less hydrolytically stable, which we attribute to stronger Ni-N/O/F coordination bonds than their Co-N/O/F counterparts.