Currently, it is still a challenge to directly achieve highly stable metal-organic frameworks (MOFs) with superior proton conductivity solely through the exquisite design of ligands and the attentive selection of metal nodes. Inspired by this, we are intrigued by a multifunctional dicarboxylate ligand including dithiophene groups, 3,4-dimethylthieno[2,3-]thiophene-2,5-dicarboxylic acid (HDTD), and lanthanide ions with distinct coordination topologies. Successfully, four isostructural three-dimensional lanthanide(III)-based MOFs, [Ln(DTD)(DEF)]·DEF·6HO [Ln = Tb (), Eu (), Sm (), and Dy ()], were solvothermally prepared, in which the effective proton transport will be provided by the coordinated or free solvent molecules, the crystalline water molecules, and the framework components, as well as a large number of highly electronegative S and O atoms. As expected, the four Ln-MOFs demonstrated the highest proton conductivities (σ) being 0.54 × 10, 3.75 × 10, 1.28 × 10, and 1.92 × 10 S·cm for the four MOFs, respectively, at 100 °C/98% relative humidity (RH). Excitingly, demonstrated an extraordinary ultrahigh σ of 1 × 10 S·cm at 30 °C/98% RH. Additionally, the plausible proton transport mechanisms were emphasized.
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http://dx.doi.org/10.1021/acsami.3c18999 | DOI Listing |
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