4.7 Article

Kirkendall effect induced ultralow thermal conductivity yields enhanced thermoelectric properties in Mg-Zn-Sb alloys

期刊

CHEMICAL ENGINEERING JOURNAL
卷 444, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2022.136599

关键词

Thermoelectric film; Phase transition; Kirkendall effect; Thermal diffusion; Microstructure

资金

  1. National Natural Science Foundation of China [62074089]
  2. Fundamental Research Funds for the Provincial Universities of Zhejiang [SJLY2021013]
  3. K. C. Wong Magna Fund in Ningbo University

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This study investigates the impact of Mg additive on the thermoelectric performance and microstructure of Mg-Zn-Sb thin films. The results show complex microstructural changes upon heating, with the formation of Kirkendall voids enhancing the thermoelectric performance.
Thermally induced phase change can modify the microstructure of thermoelectric alloys due to the interdiffusion of atomic species, and also to alter the properties of these materials. Herein, the impact of Mg additive on thermoelectric performance and microstructure of Mg-Zn-Sb thin films is studied. The results show complex microstructural changes upon heating of amorphous Mg-Zn-Sb thin films. The crystallization process of the films leads to the formation of Zn-Sb and Mg-Zn-Sb phases at elevated temperatures. Out-diffusion of Zn during crystallization process results in the formation of Kirkendall voids in Mg-Zn-Sb materials, while no such voids are found in pure Zn-Sb films. The maximum figure of merit (ZT) is found to be -1.8 at 584 K for optimized Mg24.3(Zn-Sb)75.7 thin films, which is larger than of other similar thermoelectric materials. Transmission electron microscopy reveal distinct microstructures between the pure and Mg-alloyed Zn-Sb materials. Defects and secondary phase in the alloyed films mainly contribute to effective phonon scattering and lead to very low thermal conductivity (-0.26 W/m center dot K at 584 K). Overall, this study shows a way for synthesis of high-performance lowcost Mg-Zn-Sb thermoelectric alloy by microstructure optimization and demonstrates that Kirkendall voids is an effective approach for the enhancement of thermoelectric performance of the materials.

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