Establishing the carrier scattering phase diagram for ZrNiSn-based half-Heusler thermoelectric materials

Author:

Ren QingyongORCID,Fu ChenguangORCID,Qiu Qinyi,Dai Shengnan,Liu Zheyuan,Masuda TakatsuguORCID,Asai Shinichiro,Hagihala MasatoORCID,Lee Sanghyun,Torri Shuki,Kamiyama TakashiORCID,He Lunhua,Tong XinORCID,Felser ClaudiaORCID,Singh David J.ORCID,Zhu TiejunORCID,Yang JiongORCID,Ma JieORCID

Abstract

AbstractChemical doping is one of the most important strategies for tuning electrical properties of semiconductors, particularly thermoelectric materials. Generally, the main role of chemical doping lies in optimizing the carrier concentration, but there can potentially be other important effects. Here, we show that chemical doping plays multiple roles for both electron and phonon transport properties in half-Heusler thermoelectric materials. With ZrNiSn-based half-Heusler materials as an example, we use high-quality single and polycrystalline crystals, various probes, including electrical transport measurements, inelastic neutron scattering measurement, and first-principles calculations, to investigate the underlying electron-phonon interaction. We find that chemical doping brings strong screening effects to ionized impurities, grain boundary, and polar optical phonon scattering, but has negligible influence on lattice thermal conductivity. Furthermore, it is possible to establish a carrier scattering phase diagram, which can be used to select reasonable strategies for optimization of the thermoelectric performance.

Funder

Deutsche Forschungsgemeinschaft

Alexander von Humboldt-Stiftung

National Natural Science Foundation of China

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry

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