Simulation of Polyhedral Crystal Growth Based on the Estimated Surface Energy of Crystallographic Planes

T. Uehara
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引用次数: 1

Abstract

Polyhedral shapes can be found in crystalline materials ranging from macroscopic natural mineral solids to microscopic or nanoscopic particles. These shapes originate from the crystallographic properties of the constituting material, and the outer shape depends on several unique habit planes. In this study, polyhedral crystal growth was simulated considering the surface energy and crystallographic characteristics. A series of polyhedrons, including cube, truncated hexahedron, cuboctahedron, truncated octahedron, and regular octahedron, was targeted. First, the polyhedron’s static surface energy and dynamic energy variation during crystal growth were computed. Then, the crystal-growth process was simulated based on the energy minimization policy. Interestingly, when the simulation began with truncated hexahedral nucleus, the shape changed to a cuboctahedron; however, a certain type of truncated octahedron was obtained when starting with different types of truncated octahedrons. In addition, once converged cuboctahedron abruptly changed the shape to a truncated octahedron as the crystal became larger. These results were supported by the static and dynamic energy curves. Furthermore, the method was applied to different materials by assuming virtual parameters, yielding various morphologies.
基于晶体面表面能的多面体晶体生长模拟
多面体形状可以在晶体材料中找到,从宏观的天然矿物固体到微观或纳米级颗粒。这些形状源于构成材料的晶体学特性,外部形状取决于几个独特的习惯面。在本研究中,考虑表面能和晶体学特性,模拟多面体晶体的生长。以立方体、截断六面体、三面体、截断八面体、正八面体等一系列多面体为研究对象。首先,计算了晶体生长过程中多面体的静态表面能和动态表面能的变化。然后,基于能量最小化策略对晶体生长过程进行了模拟。有趣的是,当模拟从截断的六面体核开始时,形状变成了一个立方体;然而,从不同类型的截尾八面体入手,得到了一定类型的截尾八面体。此外,当晶体变大时,曾经会聚的立方体突然改变形状为截断的八面体。这些结果得到了静态和动态能量曲线的支持。此外,通过假设虚拟参数,将该方法应用于不同的材料,得到不同的形貌。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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