Kosonowski Artur, Kumar Ashutosh, Parashchuk Taras, Cardoso-Gil Raul, Wojciechowski Krzysztof T
AGH University of Science and Technology, Faculty of Materials Science and Ceramics, Al. A. Mickiewicza 30, 30-059 Krakow, Poland.
The Lukasiewicz Research Network - Cracow Institute of Technology, Zakopianska 73, 30-418 Krakow, Poland.
Dalton Trans. 2021 Feb 2;50(4):1261-1273. doi: 10.1039/d0dt03752d.
Systematic experimental and theoretical research on the role of microstructure and interface thermal resistance on the thermal conductivity of the PbTe-CoSb3 bulk polycrystalline composite is presented. In particular, the correlation between the particle size of the dispersed phase and interface thermal resistance (Rint) on the phonon thermal conductivity (κph) is discussed. With this aim, a series of PbTe-CoSb3 polycrystalline composite materials with different particle sizes of CoSb3 was prepared. The structural (XRD) and microstructural analysis (SEM/EDXS) confirmed the intended chemical and phase compositions. Acoustic impedance difference (ΔZ) was determined from measured sound velocities in PbTe and CoSb3 phases. It is shown that κph of the composite may be reduced when particle size of the dispersed phase (CoSb3) is smaller than the critical value of ∼230 nm. This relationship was concluded to be crucial for controlling the heat transport phenomena in composite thermoelectric materials. The selection of the components with different elastic properties (acoustic impedance) and particle size smaller than Kapitza radius leads to a new direction in the engineering of composite TE materials with designed thermal properties.
本文介绍了关于微观结构和界面热阻对PbTe-CoSb3块体多晶复合材料热导率作用的系统实验和理论研究。特别讨论了分散相粒径与声子热导率(κph)上的界面热阻(Rint)之间的相关性。为此,制备了一系列具有不同CoSb3粒径的PbTe-CoSb3多晶复合材料。结构(XRD)和微观结构分析(SEM/EDXS)证实了预期的化学和相组成。根据在PbTe和CoSb3相中的测得声速确定了声阻抗差(ΔZ)。结果表明,当分散相(CoSb3)的粒径小于约230 nm的临界值时,复合材料的κph可能会降低。得出这种关系对于控制复合热电材料中的热传输现象至关重要。选择具有不同弹性特性(声阻抗)且粒径小于卡皮查半径的组分,为设计具有特定热性能的复合TE材料工程开辟了新方向。