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Novel phase diagram behavior and materials design in heterostructural semiconductor alloys

机译:异质结构半导体合金的新型相图行为和材料设计

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Structure and composition control the behavior of materials. Isostructural alloying is historically an extremely successful approach for tuning materials properties, but it is often limited by binodal and spinodal decomposition, which correspond to the thermodynamic solubility limit and the stability against composition fluctuations, respectively. We show that heterostructural alloys can exhibit a markedly increased range of metastable alloy compositions between the binodal and spinodal lines, thereby opening up a vast phase space for novel homogeneous single-phase alloys. We distinguish two types of heterostructural alloys, that is, those between commensurate and incommensurate phases. Because of the structural transition around the critical composition, the properties change in a highly nonlinear or even discontinuous fashion, providing a mechanism for materials design that does not exist in conventional isostructural alloys. The novel phase diagram behavior follows from standard alloy models using mixing enthalpies from first-principles calculations. Thin-film deposition demonstrates the viability of the synthesis of these metastable single-phase domains and validates the computationally predicted phase separation mechanism above the upper temperature bound of the nonequilibrium single-phase region.
机译:结构和成分控制材料的行为。从历史上讲,同构合金化是一种非常成功的调节材料性能的方法,但是同构合金通常受到双脚架和旋转架分解的限制,它们分别对应于热力学溶解度极限和抵抗成分波动的稳定性。我们表明,异质结构合金可以在双节线和旋节线之间显示出显着增加的亚稳合金组成范围,从而为新颖的均质单相合金开辟了广阔的相空间。我们区分两种类型的异质结构合金,即相称相和不相称相。由于围绕关键成分的结构转变,性能以高度非线性或什至不连续的方式变化,从而为材料设计提供了常规同构合金中不存在的机制。新的相图行为来自标准合金模型,该模型使用第一原理计算的混合焓。薄膜沉积证明了这些亚稳态单相域合成的可行性,并验证了在非平衡单相区的上限温度以上的计算预测相分离机制。

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