Yang Hailong, Boulet Pascal, Record Marie-Christine
Aix-Marseille University, CNRS, Madirel, Campus St Jérôme, 13013 Marseille, France.
Aix-Marseille University, University of Toulon, CNRS, IM2NP, Campus St Jérôme, 13013 Marseille, France.
Materials (Basel). 2020 Oct 22;13(21):4707. doi: 10.3390/ma13214707.
By combining density functional theory, quantum theory of atoms in molecules and transport properties calculations, we evaluated the thermoelectric properties of Sb-S system compounds and shed light on their relationships with electronic structures. The results show that, for SbS, the large density of states (DOS) variation induces a large Seebeck coefficient. Taking into account the long-range weak bonds distribution, SbS should exhibit low lattice thermal conductivity. Therefore, SbS is promising for thermoelectric applications. The insertion of Be atoms into the SbS interstitial sites demonstrates the electrical properties and Seebeck coefficient anisotropy and sheds light on the understanding of the role of quasi-one-dimensional structure in the electron transport. The large interstitial sites existing in SbS are at the origin of phonons anharmonicity which counteracts the thermal transport. The introduction of Zn and Ga atoms into these interstitial sites could result in an enhancement of all the thermoelectric properties.
通过结合密度泛函理论、分子中原子的量子理论和输运性质计算,我们评估了Sb-S体系化合物的热电性质,并揭示了它们与电子结构的关系。结果表明,对于SbS,态密度(DOS)的大幅变化导致了较大的塞贝克系数。考虑到长程弱键分布,SbS应表现出较低的晶格热导率。因此,SbS在热电应用方面具有潜力。将Be原子插入SbS的间隙位置展示了电学性质和塞贝克系数各向异性,并有助于理解准一维结构在电子输运中的作用。SbS中存在的大间隙位置是声子非谐性的根源,它抵消了热输运。将Zn和Ga原子引入这些间隙位置可能会导致所有热电性质的增强。