Two-dimensional ordering of solute nanoclusters at a close-packed stacking fault: Modeling and experimental analysis

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Abstract

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.

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Kimizuka, H., Kurokawa, S., Yamaguchi, A., Sakai, A., & Ogata, S. (2014). Two-dimensional ordering of solute nanoclusters at a close-packed stacking fault: Modeling and experimental analysis. Scientific Reports, 4. https://doi.org/10.1038/srep07318

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