| Literature DB >> 31723266 |
B Hinterleitner1,2, I Knapp1,2, M Poneder1,2, Yongpeng Shi3,4, E Bauer5,6, H Müller1, G Eguchi1, C Eisenmenger-Sittner1, M Stöger-Pollach1,7, Y Kakefuda8, N Kawamoto8, Q Guo8,9, T Baba8,9, T Mori8,9,10, Sami Ullah3, Xing-Qiu Chen3,4.
Abstract
Thermoelectric materials transform a thermal gradient into electricity. The efficiency of this process relies on three material-dependent parameters: the Seebeck coefficient, the electrical resistivity and the thermal conductivity, summarized in the thermoelectric figure of merit. A large figure of merit is beneficial for potential applications such as thermoelectric generators. Here we report the thermal and electronic properties of thin-film Heusler alloys based on Fe2V0.8W0.2Al prepared by magnetron sputtering. Density functional theory calculations suggest that the thin films are metastable states, and measurements of the power factor-the ratio of the Seebeck coefficient squared divided by the electrical resistivity-suggest a high intrinsic figure of merit for these thin films. This may arise from a large differential density of states at the Fermi level and a Weyl-like electron dispersion close to the Fermi level, which indicates a high mobility of charge carriers owing to linear crossing in the electronic bands.Entities:
Year: 2019 PMID: 31723266 DOI: 10.1038/s41586-019-1751-9
Source DB: PubMed Journal: Nature ISSN: 0028-0836 Impact factor: 49.962