Issue 31, 2024

Highly proton-conducting lanthanide metal–organic frameworks featuring highly oxygenated ligands with slow magnetic relaxation or magnetocaloric effect

Abstract

Two isoreticular lanthanide metal–organic frameworks (Ln-MOFs), {[Ln2(H2O)6(H2dobdc)6·12H2O}n (Ln = Tb3+ and Gd3+); H4dobdc = 2,5-di-hydroxy-benzene-1,4-di-carboxylic acid), constructed from a hydroxy-functionalized dicarboxybenzene were synthesized and structurally characterized. Single-crystal X-ray crystallography reveals that the two Ln-MOFs were constructed from Ln3+ dimers as secondary building units, which were linked by H2dobdc2− ligands to form three-dimensional (3D) frameworks featuring pcu topology. Interestingly, 1D triangular porous channels were formed in the frameworks with a high density of coordinated and guest water molecules and hydroxy-containing inwall, which provide a hydrophilic and highly oxygenated environment. Magnetic studies indicated the Tb(III) analogue exhibited slow relaxation of magnetization under an applied static field of 2 kOe while the Gd(III) MOF displayed the magnetocaloric effect (MCE) with a magnetic entropy change of 19.5 J kg−1 K−1. At 55 °C under 98% RH, impedance spectroscopy indicated that the Ln-MOFs exhibit high proton conductivities up to 1.63 × 10−2 and 2.51 × 10−2 S cm−1 through the vehicle mechanism, suggesting that the two are highly proton-conducting Ln-MOFs. This work not only demonstrates two rare magnetic-electrical bifunctional Ln-MOFs with high proton-conduction and interesting magnetic properties but also provides potential design guidelines for high-performance Ln-MOF based proton conductors.

Graphical abstract: Highly proton-conducting lanthanide metal–organic frameworks featuring highly oxygenated ligands with slow magnetic relaxation or magnetocaloric effect

Supplementary files

Article information

Article type
Paper
Submitted
18 May 2024
Accepted
01 Jul 2024
First published
02 Jul 2024

CrystEngComm, 2024,26, 4181-4189

Highly proton-conducting lanthanide metal–organic frameworks featuring highly oxygenated ligands with slow magnetic relaxation or magnetocaloric effect

S. Yang, Q. Zhang, Y. Zhang, T. Tan, J. Zhu, X. Yang, L. Shi, J. Yang and D. Shao, CrystEngComm, 2024, 26, 4181 DOI: 10.1039/D4CE00501E

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