High-Performance Thermoelectric Oxides Based on Spinel Structure
arXiv:2008.09759 · doi:10.1021/acsaem.0c00640
Abstract
High-performance thermoelectric oxides could offer a great energy solution for integrated and embedded applications in sensing and electronics industries. Oxides, however, often suffer from low Seebeck coefficient when compared with other classes of thermoelectric materials. In search of high-performance thermoelectric oxides, we present a comprehensive density functional investigation, based on GGA formalism, surveying the 3d and 4d transition-metal-containing ferrites of the spinel structure. Consequently, we predict MnFeO and RhFeO have Seebeck coefficients of V K at near room temperature, achieved by light hole and electron doping. Furthermore, CrFeO and MoFeO have even higher ambient Seebeck coefficients at V K. In the latter compounds, the Seebeck coefficient is approximately a flat function of temperature up to K, offering a tremendous operational convenience. Additionally, MoFeO doped with holes/cm has a calculated thermoelectric power factor of W K m at K, and W K m at K. The thermoelectric properties predicted here can bring these thermoelectric oxides to applications at lower temperatures traditionally fulfilled by more toxic and otherwise burdensome materials.
11 pages, 6 figures, 1 table, 2 supplementary files
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