Yamini Sima Aminorroaya, Wang Heng, Gibbs Zachary M, Pei Yanzhong, Dou Shi Xue, Snyder G Jeffrey
Australian Institute for Innovative Materials (AIIM), Innovation Campus, University of Wollongong, NSW 2519, Australia.
Phys Chem Chem Phys. 2014 Feb 7;16(5):1835-40. doi: 10.1039/c3cp54493a.
Recently a significant improvement in the thermoelectric performance of p-type ternary PbTe-PbSe and PbTe-PbS systems has been realized through alternating the electronic band structure and introducing nano-scale precipitates to bulk materials respectively. However, the quaternary system of PbTe-PbSe-PbS has received less attention. In the current work, we have excluded phase complexity by fabricating single phase sodium doped PbTe, alloyed with PbS up to its solubility limit which is extended to larger concentrations than in the ternary system of PbTe-PbS due to the presence of PbSe. We have presented a thermoelectric efficiency of approximately 1.6 which is superior to ternary PbTe-PbSe and PbTe-PbS at similar carrier concentrations and the binary PbTe, PbSe and PbS alloys. The quaternary system shows a larger Seebeck coefficient than the ternary PbTe-PbSe alloy, indicative of a wider band gap, valence band energy offset and heavier carriers effective mass. In addition, the existence of PbS in the alloy further reduces the lattice thermal conductivity originated from phonon scattering on solute atoms with high contrast atomic mass. Single phase quaternary PbTe-PbSe-PbS alloys are promising thermoelectric materials that provide high performance through adjusting the electronic band structure by regulating chemical composition.
最近,通过分别改变电子能带结构和向块状材料中引入纳米级沉淀物,p型三元PbTe-PbSe和PbTe-PbS体系的热电性能有了显著改善。然而,PbTe-PbSe-PbS四元体系受到的关注较少。在当前工作中,我们通过制备单相钠掺杂PbTe排除了相复杂性,该单相钠掺杂PbTe与PbS合金化至其溶解度极限,由于PbSe的存在,其溶解度极限扩展到比PbTe-PbS三元体系更高的浓度。我们展示了约1.6的热电效率,在相似载流子浓度下优于三元PbTe-PbSe和PbTe-PbS以及二元PbTe、PbSe和PbS合金。该四元体系的塞贝克系数比三元PbTe-PbSe合金更大,表明其带隙更宽、价带能量偏移更大且载流子有效质量更重。此外,合金中PbS的存在进一步降低了由声子在具有高对比度原子质量的溶质原子上散射引起的晶格热导率。单相四元PbTe-PbSe-PbS合金是很有前景的热电材料,通过调节化学成分来调整电子能带结构,从而提供高性能。