Kimizuka Hajime, Kurokawa Shu, Yamaguchi Akihiro, Sakai Akira, Ogata Shigenobu
Department of Mechanical Science and Bioengineering, Osaka University, Osaka 560-8531, Japan.
1] Department of Materials Science and Engineering, Kyoto University, Kyoto 606-8501, Japan [2] Center for Elements Strategy Initiative for Structural Materials, Kyoto University, Kyoto 606-8501, Japan.
Sci Rep. 2014 Dec 4;4:7318. doi: 10.1038/srep07318.
Predicting the equilibrium ordered structures at internal interfaces, especially in the case of nanometer-scale chemical heterogeneities, is an ongoing challenge in materials science. In this study, we established an ab-initio coarse-grained modeling technique for describing the phase-like behavior of a close-packed stacking-fault-type interface containing solute nanoclusters, which undergo a two-dimensional disorder-order transition, depending on the temperature and composition. Notably, this approach can predict the two-dimensional medium-range ordering in the nanocluster arrays realized in Mg-based alloys, in a manner consistent with scanning tunneling microscopy-based measurements. We predicted that the repulsively interacting solute-cluster system undergoes a continuous evolution into a highly ordered densely packed morphology while maintaining a high degree of six-fold orientational order, which is attributable mainly to an entropic effect. The uncovered interaction-dependent ordering properties may be useful for the design of nanostructured materials utilizing the self-organization of two-dimensional nanocluster arrays in the close-packed interfaces.
预测内部界面处的平衡有序结构,尤其是在纳米级化学不均匀性的情况下,是材料科学中一个持续存在的挑战。在本研究中,我们建立了一种从头算粗粒度建模技术,用于描述包含溶质纳米团簇的密排堆垛层错型界面的类相行为,该界面会根据温度和成分发生二维无序-有序转变。值得注意的是,这种方法能够以与基于扫描隧道显微镜的测量结果一致的方式,预测镁基合金中实现的纳米团簇阵列中的二维中程有序。我们预测,相互排斥作用的溶质-团簇系统会持续演变成高度有序的密集堆积形态,同时保持高度的六重取向有序,这主要归因于熵效应。所揭示的依赖于相互作用的有序特性可能有助于利用密排界面中二维纳米团簇阵列的自组织来设计纳米结构材料。