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Thermoelectric performance of tellurium-reduced quaternary p-type lead-chalcogenide composites

机译:碲还原四元p型铅硫属化物复合材料的热电性能

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摘要

A long-standing technological challenge to the widespread application of thermoelectric generators is obtaining high-performance thermoelectric materials from abundant elements. Intensive study on PbTe alloys has resulted in a high figure of merit for the single-phase ternary PbTe–PbSe system through band structure engineering, and the low thermal conductivity achieved due to nanostructuring leads to high thermoelectric performance for ternary PbTe–PbS compounds. Recently, the single-phase p-type quaternary PbTe–PbSe–PbS alloys have been shown to provide thermoelectric performance superior to the binary and ternary lead chalcogenides. This occurs via tuning of the band structure and from an extraordinary low thermal conductivity resulting from high-contrast atomic mass solute atoms. Here, we present the thermoelectric efficiency of nanostructured p-type quaternary PbTe–PbSe–PbS composites and compare the results with corresponding single-phase quaternary lead chalcogenide alloys. We demonstrate that the very low lattice thermal conductivity achieved is attributed to phonon scattering at high-contrast atomic mass solute atoms rather than from the contribution of secondary phases. This results in a thermoelectric efficiency of ∼1.4 over a wide temperature range (650–850 K) in a p-type quaternary (PbTe)0.65(PbSe)0.1(PbS)0.25 composite that is lower than that of single-phase (PbTe)0.85(PbSe)0.1(PbS)0.05 alloy without secondary phases.
机译:对热电发电机的广泛应用的长期技术挑战是从丰富的元素中获得高性能的热电材料。对PbTe合金的深入研究通过能带结构工程获得了单相三元PbTe-PbSe体系的高品质因数,并且由于纳米结构而实现的低热导率导致三元PbTe-PbS化合物具有较高的热电性能。最近,单相p型四元PbTe–PbSe–PbS合金已显示出优于二元和三元硫属元素化物的热电性能。这是通过调整能带结构以及由于高对比度原子质量溶质原子产生的异常低的热导率而发生的。在这里,我们介绍了纳米结构的p型四元PbTe–PbSe–PbS复合材料的热电效率,并将结果与​​相应的单相四元铅硫属元素化物合金进行了比较。我们证明,实现的极低晶格热导率归因于高对比度原子质量溶质原子处的声子散射,而不是由于次级相的贡献。这导致p型四元(PbTe)0.65(PbSe)0.1(PbS)0.25复合材料在较宽的温度范围(650-850 K)内具有约1.4的热电效率,低于单相(PbTe) )0.85(PbSe)0.1(PbS)0.05合金,无第二相。

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