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Optimized electronic properties and nano-structural features for securing high thermoelectric performance in doped GeTe.
Yang, Zan; Tseng, Yu-Chih; Meledath Valiyaveettil, Suneesh; Yuan, Hui; Smith, Evan; Chen, Kuei-Hsien; Huang, Yuyang; Zou, Tianze; Kycia, Jan; Mozharivskyj, Yurij.
Afiliación
  • Yang Z; Department of Chemistry and Chemical Biology, McMaster University, Hamilton, Ontario, Canada. mozhar@mcmaster.ca.
  • Tseng YC; CanmetMATERIALS, Natural Resources Canada, Ontario, Canada.
  • Meledath Valiyaveettil S; Institute of Atomic and Molecular Sciences, Academia Sinica, Taipei 10617, Taiwan.
  • Yuan H; Department of Physics, National Chentral University, Taoyuan City 32001, Taiwan.
  • Smith E; Canadian Centre for Electron Microscopy, McMaster University, Ontario, Canada.
  • Chen KH; Department of Physics and Astronomy, McMaster University, Ontario, Canada.
  • Huang Y; Institute of Atomic and Molecular Sciences, Academia Sinica, Taipei 10617, Taiwan.
  • Zou T; Department of Physics, National Chentral University, Taoyuan City 32001, Taiwan.
  • Kycia J; Department of Chemistry and Chemical Biology, McMaster University, Hamilton, Ontario, Canada. mozhar@mcmaster.ca.
  • Mozharivskyj Y; Department of Physics and Astronomy, University of Waterloo, Ontario, Canada.
Dalton Trans ; 52(31): 10689-10699, 2023 Aug 08.
Article en En | MEDLINE | ID: mdl-37482937
ABSTRACT
Recently, thermoelectric (TE) materials have been attracting great attention due to their improved capability to convert heat directly into electricity. PbTe-based TE materials are among the most competitive ones; however, lead toxicity limits their potential applications. Thus, the current focus in the field is on the discovery of lead-free analogues. GeTe is considered to be a promising candidate, however, its thermoelectric performance is limited by a non-ideal band structure and intrinsic Ge vacancies. In this work, GeTe was co-doped with Bi, Zn, and In. Initial doping with Bi enhances the performance by tuning the electronic properties and bringing down the thermal conductivity. Subsequent Zn doping permits to maintain the high power factor by increasing carrier mobility and reducing carrier concentration. Additionally, Zn incorporation lowers thermal conductivity and, thus, increases the performance. Subsequent In doping in (Ge0.97Zn0.02In0.01Te)0.97(Bi2Te3)0.03 reduces thermal conductivity even further and makes this material the best performing one. Scanning transmission electron microscopy shows the presence of nano twinning, defect layers, and dislocation bands that contribute to the suppression of the lattice thermal conductivity. A peak zT value of 2.06 and an average zT value of 1.30 have been achieved in (Ge0.97Zn0.02In0.01Te)0.97(Bi2Te3)0.03. These results are among the best state-of-the-art thermoelectric materials.

Texto completo: 1 Base de datos: MEDLINE Idioma: En Revista: Dalton Trans Asunto de la revista: QUIMICA Año: 2023 Tipo del documento: Article

Texto completo: 1 Base de datos: MEDLINE Idioma: En Revista: Dalton Trans Asunto de la revista: QUIMICA Año: 2023 Tipo del documento: Article