材料科学
体积模量
各向异性
格子(音乐)
凝聚态物理
热力学
物理
热导率
结晶学
化学
量子力学
声学
作者
Feipeng An,Qianli Liu,Hao Zhang,Jianqing Fan,Yalai Zhang,Yusen Li,Guangchi Wang,Jiangquan Wu,Xiaoyu Chong
标识
DOI:10.1142/s0217984921502250
摘要
First-principles calculations were used to investigate the stability, electronic structure, elastic and lattice thermal conductivity of FeS and FeS 2 polymorphs ([Formula: see text]-FeS, [Formula: see text]-FeS, [Formula: see text]-FeS, [Formula: see text]-FeS 2 , [Formula: see text]-FeS 2 ). The calculated lattice parameters were in agreement with experimental results. The results showed that these Fe-S binary compounds are thermodynamically and mechanically stable. The elastic anisotropies of Fe-S binary compounds were exhibited by 3D modulus ball and 2D projections. Among all the five compounds, [Formula: see text]-FeS 2 compound has the largest bulk modulus and [Formula: see text]-FeS 2 has the largest Young’s modulus and hardness. Furthermore, [Formula: see text]-FeS, [Formula: see text]-FeS and [Formula: see text]-FeS compounds can be regarded as ductile material according to [Formula: see text] and Poisson’s ratio. The FeS compounds show metallic character and FeS 2 compounds show semiconductor character through analyzing their bandgap and density of states (DOS). The [Formula: see text]-FeS 2 has the largest thermal conductivity according to the Clarke model, and the [Formula: see text]-FeS shows the strongest thermal conductivity anisotropy among the five compounds.
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