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Updated: May 13, 2025

Author Spotlight: Accelerating Discovery in Microporous Material Chemistry
Published on: October 6, 2023
High proton conduction in a series of three-dimensional lanthanide(III)-organic frameworks constructed by
Xiao-Ran Wang1, Li-Xia Xie2, Yi-Lin Yang1
1College of Chemistry, Zhengzhou University, Zhengzhou 450001 Henan, PR China.
Abstract:
In designing and preparing new proton-conductive materials, using cheap and easily available raw materials to efficiently prepare metal-organic frameworks (MOFs) with high stability and excellent proton conductivity is still a huge challenge. Herein, six lanthanide(III)-MOFs, {[Ln2(DHBDC)3(DMF)4](DMF)2}n [(Ln III = Pr III (1), Nd III (2), Sm III (3), Eu III (4), Gd III (5), Tb III (6))] with high stability were solvothermally synthesized utilizing 2,5-dihydroxy-1,4-benzenedicarboxylic acid (H4-DHBDC) as a bridging ligand. These isostructural MOFs all possess a three-dimensional framework and a dense H-bond network formed by the carbonyl groups in the framework, the non-coordinated hydroxyl groups, and the coordinated and free DMF molecules, which ensure efficient proton conduction. Their good water and thermal stability were verified using various characterization techniques (powder X-ray diffraction, thermogravimetric analysis, and infrared). Then, their proton conductivity was investigated in detail concerning temperature and relative humidity (RH). At 100 °C and 97 % RH, their optimum proton conductivity can reach up to 0.96 × 10-2, 0.67 × 10-2, 0.85 × 10-2, 1.03 × 10-2, 0.53 × 10-2, and 0.93 × 10-2 S/cm for 1-6, respectively. Finally, their proton-transport processes were thoroughly examined through detailed structural analyses, adsorption-property determinations, and activation energy values. Notably, these MOF materials have the advantages of easy preparation and relatively low cost, which paves the way for their practical applications.
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