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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Phase Stability, Physical Properties, and Hardness of Transition-Metal Diborides MB2 (M = Tc, W, Re, and Os): First-Principles Investigations
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Phase Stability, Physical Properties, and Hardness of Transition-Metal Diborides MB2 (M = Tc, W, Re, and Os): First-Principles Investigations

机译:过渡金属二硼化物MB2(M = Tc,W,Re和Os)的相稳定性,物理性质和硬度:第一性原理研究

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Using first-principles calculations, the structural stability, elastic strength, and formation enthalpies of four diborides MB2 (M = Tc, W, Re, and Os) are investigated by means of the pseudopotential plane-waves method, as well as the roles of covalency and bond topology in the phase incompressibility. Three candidate structures of known transition-metal diborides are chosen to probe. The calculated lattice parameters, elastic properties, Poisson's ratio, and B/G ratio are derived. It is observed that the ReB2-type structure containing well-defined zigzag covalent chains exhibits an unusual incompressibility along the c axis comparable to that of diamond. Formation enthalpy calculations demonstrate that the ground-state phase is synthesizable at low pressure, whereas the other phase can be achieved through the phase transformation. Moreover, according to Mulliken overlap population analysis, a semiempirical method to evaluate the hardness of multicomponent crystals with a partial metallic bond is presented. The predicted hardness of WB2-WB2, ReB2-ReB2, and OsB2-OsB2 is in reasonable agreement with experiment data. Both strong covalency and a zigzag topology of interconnected bonds underlie the ultraincompressibilities. In addition, the superior performance and largest hardness of ReB2-ReB2 indicate that it is a superhard material. This work provides a useful guide for designing novel borides materials having excellent mechanical performances.
机译:使用第一性原理计算,通过拟势平面波方法研究了四个二硼化物MB2(M = Tc,W,Re和Os)的结构稳定性,弹性强度和形成焓,以及它们的作用。共价和键拓扑中的相不可压缩性。选择已知过渡金属二硼化物的三个候选结构进行探测。得出计算出的晶格参数,弹性特性,泊松比和B / G比。观察到,含有明确定义的之字形共价链的ReB2型结构沿c轴显示出与钻石相当的不可压缩性。地层焓计算表明,基态相可在低压下合成,而另一相可通过相变实现。此外,根据Mulliken重叠种群分析,提出了一种半经验方法来评估具有部分金属键的多组分晶体的硬度。 WB2-WB2,ReB2-ReB2和OsB2-OsB2的预测硬度与实验数据基本吻合。超压缩性是强共价性和互连键的锯齿形拓扑结构的基础。另外,ReB2-ReB2的优越性能和最大硬度表明它是一种超硬材料。这项工作为设计具有优异机械性能的新型硼化物材料提供了有用的指导。

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