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高压高温下高性能锰掺杂碲化锡材料的制备

Preparation of High-Performance Mn-Doped SnTe Materials at High Pressure and High Temperature.

作者信息

Liu Zelin, Guo Zhili, Deng Le

机构信息

Department of Material Science and Engineering, Changchun University of Science and Technology, Changchun 130022, China.

出版信息

Inorg Chem. 2024 Mar 25;63(12):5389-5399. doi: 10.1021/acs.inorgchem.3c03991. Epub 2024 Mar 13.

Abstract

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 SnMnTe sample achieves the maximum PF value of 34.00 μW cm K at 775 K and PF value of 21.36 μW cm K 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 SnMnTe sample attaining a minimum lattice thermal conductivity of 0.45 W m K at 625 K. The thermoelectric figure of merit (zT) of sample SnMnTe reaches a maximum value of 1.1 at 775 K, and the zT 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.

摘要

碲化锡是一种环境友好型的中温热电材料,但其固有的低功率因数(PF)和高晶格热导率严重限制了其应用。在本研究中,基于锰掺杂可诱导能带收敛这一事实,采用高温高压(HPHT)合成方法优化样品制备,并将合成周期缩短至30分钟。结果表明,SnMnTe样品在775K时实现了34.00 μW cm K的最大PF值,在300 - 875K之间的PF值为21.36 μW cm K。微观结构分析表明,高压合成方法在样品中引入了丰富的晶界、各种晶粒尺寸、多种缺陷和孔隙结构。这些微观晶体结构能够有效地散射声子并降低晶格热导率。这些微观形貌的改变使得SnMnTe样品在625K时达到了0.45 W m K的最低晶格热导率。SnMnTe样品的热电优值(zT)在775K时达到最大值1.1,在300 - 875K范围内zT达到0.63。本研究表明,锰元素掺杂与微观结构改性的协同效应能够有效优化碲化锡材料的热电输运性能。

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