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Structure and Energetics of Vacancies in Body Centered Cubic Hafnium under Pressure: First-Principles Study

机译:压力下的身体中心空位空缺的结构和能量学:第一原理研究

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The structure and energetics of vacancies in hafnium in the body centered cubic (bcc) structure is investigated as function of pressure from 0 to 100 GPa by means of first principles electronic structure calculations in the framework of the density functional theory in the local density approximation using the plane-wave pseudopotential method. The structural relaxation around the vacancy in the cubic symmetry is exceptionally large with a relaxation energy above 2.2 eV at all pressures, i.e. including at pressures where the bcc structure is dynamically stable (P > 45 GPa) and even energetically stable (P > 56 GPa). The oscillatory behavior, typical of bcc metals, displayed by the relaxation pattern is shown to be connected with the displacement field induced by the L 2/3 [111] phonon. The configuration where an atom is placed halfway between two nearest neighbor vacant sites - corresponding usually to the saddle point configuration for migration - has a lower energy than the normal cubic configuration for P<67 GPa. According to our calculations, the vacancy therefore adopts an unexpected split configuration in a finite pressure range where the bcc structure is energetically stable.
机译:在体内的结构和空位的能量学中铪心立方(BCC)结构使用在局部密度近似密度泛函理论的框架研究作为压力的函数从0到100 GPA通过第一原理电子结构计算的方法平面波伪能量方法。在立方对称的空位周围的结构松弛在所有压力下,在2.2eV上高于2.2eV的放松能量,即在BCC结构动态稳定(P> 45GPa)甚至能量稳定(P> 56 GPa)的压力下)。振荡行为,典型BCC金属,由松弛图案显示被示出为与由L 2/3 [111]的声子导致的位移场相连。 Atom在两个最近邻空置位点之间放置的配置 - 对应于迁移的鞍点配置的对应 - 具有比P <67 GPA的正常立方配置更低的能量。根据我们的计算,因此空缺采用了在有限压力范围内的意外的分开配置,其中BCC结构能量稳定。

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