Thermoelectric Performance of Copper-Doped Nickel Benzene-1,3,5-Tricarboxylate Metal-Organic Framework

Abstract

Metal-organic frameworks (MOFs), which comprise metal cations and organic ligands connected through coordination bonds, exhibit exceptional porosity and tunable properties, making them promising for thermoelectric applications. However, most MOFs have low electrical conductivity which limits their application in thermoelectric devices. Doping transition metal ions into MOF systems can provide adequate conductivity for thermoelectric conversion. Thus, in this study, the thermoelectric properties of Cu-doped nickel benzene-1,3,5-tricarboxylate (NiBTC) were investigated to optimize carrier concentration and mobility.NiBTC was synthesized into a hollow structure to enhance phonon scattering and then doped with copper to tune its electrical conductivity and Seebeck coefficient. The synthesis was confirmed through various characterization techniques, including XRD, FTIR, and electron microscopy. Cu doping significantly increased electrical conductivity by ~10% while slightly decreasing the Seebeck coefficient; however, high doping levels (15%) introduced CuBTC, which negatively affected performance. The findings revealed that the substitution of Ni²⁺ with Cu²⁺ enhances electrical performance by improving carrier concentration and mobility, while the hollow structure reduces thermal conductivity. The optimized Cu-NiBTC composite exhibited promising thermoelectric performance, with a maximum figure of merit of 0.571 at 473 K. This study highlights the potential of MOF-based composites for thermoelectric applications, promoting future advancements in energy-harvesting technologies.

Supplementary files

Article information

Article type
Research Article
Submitted
30 Jun 2025
Accepted
05 Sep 2025
First published
05 Sep 2025

Inorg. Chem. Front., 2025, Accepted Manuscript

Thermoelectric Performance of Copper-Doped Nickel Benzene-1,3,5-Tricarboxylate Metal-Organic Framework

M. Kim, D. Park and J. Kim, Inorg. Chem. Front., 2025, Accepted Manuscript , DOI: 10.1039/D5QI01400J

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