Li-Sn体系的从头计算:随着压缩的增加揭示超导材料的新相

T. Lim, T. Yoon, Y. H. R. Chang, S. Lai
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引用次数: 0

摘要

利用量子力学遗传算法方法和基于密度泛函理论的第一性原理计算,对压缩锂锡复合材料的化学计量学、晶体化合物、电子属性和超导性进行了深入研究。我们在中等压力(5-20 GPa)下的模拟预测了一个复杂的凸壳图,具有以下稳定的富锂相:I4/mm -Li6Sn2, -Li7Sn2, -Li5Sn2, Ama2-Li4Sn2, -Li5Sn2, -Li6Sn2, C2/m-Li4Sn1, P21/m-Li6Sn2, -Li7Sn2和Cmcm-Li4Sn2。对它们的独立弹性参数进行仔细的检查表明它们具有足够的力学稳定性。这些相是金属体系,具有相当高的电子浓度,接近费米能级或N(EF),范围为0.6至2.4个态/eV电池。在整个压力范围内稳定的Li6Sn2结构在费米能级上的软模和陡平坦能带也很有趣。这些特征是超导行为的先决条件。高斯线性响应函数和四面体线性响应函数分别得到了满意的超导转变温度Tc (3.1 ~ 6.6 K)和Tc (2.1 ~ 2.4 K)。碱基元素Li和Sn的结构转变结果与文献吻合较好,表明中间相预测可靠。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ab Initio Calculation of Li-Sn System: Unraveling New Phases of Superconducting Materials with Increasing Compression
Stoichiometry, crystal compound, electronic attributes and superconductivity of compressed lithium-tin composites have been thoroughly studied using quantum mechanical genetic algorithm approach and the first principles computations based on density functional theory. Our simulations at moderate pressure (5-20 GPa) predict a complex convex hull diagram, with the following stable Li‑rich phases: I4/mmm-Li6Sn2, -Li7Sn2, -Li5Sn2, Ama2-Li4Sn2, -Li5Sn2, -Li6Sn2, C2/m-Li4Sn1, P21/m-Li6Sn2, -Li7Sn2 and Cmcm-Li4Sn2. Careful examination at their independent elastic parameters reveals sufficient mechanical stability in them. These phases are metallic system, with reasonably high electron concentration near to Fermi level or N(EF) that ranges from 0.6 to 2.4 states/eV cell. It is also interesting for us to observe soft modes and steep-flat energy bands at Fermi levels of Li6Sn2 structures which are stable throughout the pressure range. These features are prerequisites for superconducting behavior. Linear response function with Gaussian and tetrahedron methods reveals satisfactory superconducting transition temperature Tc (3.1 ~ 6.6 K) and Tc (2.1 ~ 2.4 K), respectively. Structural transition results for based elements Li and Sn agree well with literature thus signifying reliable prediction of intermediate phases.
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