静水压力
材料科学
四方晶系
亚稳态
相变
热力学
流体静力平衡
剪应力
剪切(地质)
单剪
变形(气象学)
刚度
金刚石顶砧
不稳定性
凝聚态物理
机械
结晶学
晶体结构
化学
复合材料
物理
高压
量子力学
有机化学
作者
Bijaya B. Karki,Graeme J. Ackland,Jason Crain
标识
DOI:10.1088/0953-8984/9/41/005
摘要
Pressure-induced elastic instabilities are investigated in the prototypic ionic and covalent solids (MgO, CaO, and Si) using generalized elastic stability criteria based on the elastic stiffness coefficients which are determined directly from stress - strain relations. From first-principles computer simulations of the instabilities, we demonstrate the validity and importance of the generalized criteria relative to the conventional criteria in describing the crystal stability under hydrostatic pressure in relation to the real structural transformations. We examine systems for which the two phases can be related by a simple deformation, and in all cases we show that the generalized elastic stiffness coefficient associated with that deformation softens toward the transition. The shear stability criterion bounds the first-order B1 - B2 phase transition pressure from above and below in MgO and CaO, suggesting a wide pressure regime of metastability, whereas the tetragonal shear stability criterion predicts precisely the second-order rutile-to- transition in . The high-pressure elastic behaviour of diamond structure Si is studied in detail. A tetragonal shear instability corresponding to its transformation to the -Sn structure should occur in diamond structure Si at a pressure of 101 GPa, compared to the experimental value of 9 to 13 GPa for the transition pressure.
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