论文标题
三维二维六边形材料的外侧异质结构和多峰的原子序和相位分离
Atomic ordering and phase separation in lateral heterostructures and multijunctions of ternary two-dimensional hexagonal materials
论文作者
论文摘要
检查了二维六边形材料三元单层的生长和微观结构特性,包括单个二维晶体晶粒和平面异质结构,多峰或超级晶格。这项研究是通过开发三个原子成分之间的sublattice Order和耦合的三元相场晶体模型进行的。结果表明,从相位分离到几何沮丧的晶格原子订单,组成模式或调制的过渡可以通过在均元素相邻的异质元素的能量偏好程度来控制。生长和系统条件的影响通过数值计算和种间空间相关性的分析以及合金互和混合或无序的程度来定量确定。这些发现适用于模拟具有原子异质界面的单层外侧异质结构的生长,并通过边缘 - 持续性的顺序过程,形成了相应的超晶格或结构,具有多个异质结构,具有多个与近期实验的实验,该实验与近期的型号多层构造的转换金属元素一致。还探讨了一种不同类型的基于合金的横向异质结构和多峰,它们将三元订购的合金域与毗邻的二进制化合物块整合在一起,从而提供了更广泛的二维异质结构材料。
The growth and microstructural properties of ternary monolayers of two-dimensional hexagonal materials are examined, including both individual two-dimensional crystalline grains and in-plane heterostructures, multijunctions, or superlattices. The study is conducted through the development of a ternary phase field crystal model incorporating sublattice ordering and the coupling among the three atomic components. The results demonstrate that a transition of compositional pattern or modulation in this type of two-dimensional ternary crystals, from phase separation to geometrically frustrated lattice atomic ordering, can be controlled via the varying degree of energetic preference of heteroelemental neighboring over the homoelemental ones. Effects of growth and system conditions are quantitatively identified through numerical calculations and analyses of interspecies spatial correlations and the degree of alloy intermixing or disordering. These findings are applied to simulating the growth of monolayer lateral heterostructures with atomically sharp heterointerface, and via the sequential process of edge-epitaxy, the formation of the corresponding superlattices or structures with multiple heterojunctions, with outcomes consistent with recent experiments of in-plane multi-heterostructures of transition metal dichalcogenides. Also explored is a distinct type of alloy-based lateral heterostructures and multijunctions which integrate ternary ordered alloy domains with the adjoining blocks of binary compounds, providing a more extensive variety of two-dimensional heterostructural materials.