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Trends in elasticity and electronic structure of 5d transition metal diborides: first-principles calculations

机译:5d过渡金属二硼化物的弹性和电子结构趋势:第一性原理计算

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摘要

We investigate the cohesive energy, heat of formation, elastic constant and electronic band structure of transition metal diborides TMB2 (TM = Hf, Ta, W, Re, Os and Ir, Pt) in the Pmmn space group using the ab initio pseudopotential total energy method. Our calculations indicate that there is a relationship between elastic constant and valence electron concentration (VEC): the bulk modulus and shear modulus achieve their maximum when the VEC is in the range of 6.8-7.2. In addition, trends in the elastic constant are well explained in terms of electronic band structure analysis, e.g., occupation of valence electrons in states near the Fermi level, which determines the cohesive energy and elastic properties. The maximum in bulk modulus and shear modulus is attributed to the nearly complete filling of TM d-B p bonding states without filling the antibonding states. On the basis of the observed relationship, we predict that alloying W and Re in the orthorhombic structure OsB2 might be harder than alloying the Ir element. Indeed, the further calculations confirmed this expectation.
机译:我们使用从头算起的伪势能,研究了Pmmn空间群中过渡金属二硼化物TMB2(TM = Hf,Ta,W,Re,Os和Ir,Pt)的内聚能,形成热,弹性常数和电子能带结构。方法。我们的计算表明,弹性常数和价电子浓度(VEC)之间存在关系:当VEC在6.8-7.2范围内时,体积模量和剪切模量达到最大值。另外,弹性常数的趋势可以通过电子能带结构分析得到很好的解释,例如,费米能级附近的价电子的占据,这决定了内聚能和弹性。体积模量和剪切模量的最大值归因于TM d-B p键合状态的几乎完全填充而没有填充反键合状态。根据观察到的关系,我们预测在正交结构OsB2中合金化W和Re可能比合金Ir元素更难。确实,进一步的计算证实了这一预期。

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