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Eiji Abe

Publications and source records attributed to Eiji Abe.

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Density Functional Theory Study of Solute Cluster Growth Processes in Mg-Y-Zn LPSO Alloys

Solute clusters in long period stacking order (LPSO) alloys play a key role in their idiosyncratic plastic behavior, for example kink formation and kink strengthening. Identifying atomistic details of cluster structures is a prerequisite for atomistic modeling of LPSO alloys and is crucial for improving their strength and ductility; however, there is much uncertainty regarding interstitial atoms in the cluster. Although density functional theory calculations have shown that the inclusion of Mg interstitial atoms is energetically most favorable in majority of LPSO alloys, solute elements have also been experimentally observed at interstitial sites. To predict the distributions of interstitial atoms in the cluster and to determine the kind of elements present, it is necessary to identify mechanisms by which interstitial atoms are created. In the present work, we use density functional theory calculations to investigate growth processes of solute clusters, specifically the Mg-Y-Zn LPSO alloy, in order to determine the precise atomistic structure of its solute clusters. We show that a pair of an interstitial atom and a vacancy are spontaneously created when a certain number of solute atoms are absorbed into the cluster, and that all full-grown clusters should include interstitial atoms. We also demonstrate that interstitial atoms are mostly Mg, while the rest are Y; interstitial Zn atoms are negligible. This knowledge greatly simplifies the atomistic modeling of solute clusters in Mg-Y-Zn alloys. Owing to the vacancies emitted from the cluster, vacancy density should be super-saturated in regions where solute clusters are growing, and increased vacancy density accelerates cluster growth.

cond-mat.mtrl-sci

Structure of long-period stacking/order Mg-Zn-RE (RE: rare-earth and Y) phases with extended non-stoichiometry ranges

We propose structure models of the unique long-period stacking/order (LPSO) phases formed in the Mg-Zn-RE alloys, based on Z-contrast scanning transmission electron microscopy (STEM) observations and first-principles calculations. The LPSO structures are long-period stacking derivatives of the hcp-Mg structure, and the Zn/RE distributions are restricted at the four close-packed atomic layers forming local fcc-stacking (i.e., a local ABCA stacking). Chemical order is well developed for the LPSO phases formed in Mg97Zn1Er2 (14H-type) and Mg85Zn6Y9 (18R-type) alloys with pronounced superlattice reflections, and the relevant Zn/RE distributions are clearly emerged in the Z-contrast atomic images. Initial ternary-ordered models are constructed by placing all the atoms at the ideal honeycomb sites, leading to plausible space groups of P63/mcm for 14H-type and C2/m, P3112 or P3212 for 18R-type. Characteristic ordered feature is well represented by the local Zn6RE8 clusters, which are embedded in the fcc-stacking layers in accordance with the L12-type short-range order. Energy-favored structural relaxations of the initial model cause significant displacements of the Zn/RE positions, implying that strong Zn-RE interactions may play a critical role for the phase stability. The LPSO phases seem to tolerate a considerable degree of disorder at the Zn and RE sites with statistical co-occupations by Mg, extending the non-stoichiometry phase region bounded along the Zn/RE equi-atomic line from ~Mg94.0Zn2.0Y4.0 to ~Mg83.3Zn8.3Y8.3.

cond-mat.mtrl-sci