化学
微观结构
热电效应
兴奋剂
热电材料
热导率
粒度
大气温度范围
功勋
塞贝克系数
格子(音乐)
分析化学(期刊)
矿物学
材料科学
冶金
复合材料
热力学
结晶学
光电子学
物理
色谱法
声学
作者
Zelin Liu,Zhili Guo,Le Deng
出处
期刊:Inorganic Chemistry
[American Chemical Society]
日期:2024-03-13
卷期号:63 (12): 5389-5399
被引量:7
标识
DOI:10.1021/acs.inorgchem.3c03991
摘要
SnTe is an environmentally friendly medium-temperature thermoelectric material, but its inherent low power factor (PF) and high lattice thermal conductivity severely limit its application. In this study, based on the fact that Mn doping can induce band convergence, the high-pressure and high-temperature (HPHT) synthesis method was used to optimize the sample preparation and shorten the synthesis cycle to 30 min. The results show that the Sn0.93Mn0.10Te sample achieves the maximum PF value of 34.00 μW cm-1 K-2 at 775 K and PFave value of 21.36 μW cm-1 K-2 between 300-875 K. Microstructure analysis shows that the high-pressure synthesis method introduces abundant grain boundaries, various grain sizes, multiple defects, and pore structures into the sample. These microscopic crystal structures can effectively scatter phonons and lower the lattice thermal conductivity. The modification of these micromorphologies results in the Sn0.92Mn0.11Te sample attaining a minimum lattice thermal conductivity of 0.45 W m-1 K-1 at 625 K. The thermoelectric figure of merit (zT) of sample Sn0.92Mn0.11Te reaches a maximum value of 1.1 at 775 K, and the zTave reaches 0.63 in the range of 300-875 K. This study indicates that the synergistic effect of Mn element doping and microstructure modification can effectively optimize the thermoelectric transport performance of SnTe materials.
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