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Dependence of elastic strain field on the self-organized ordering of quantum dot superlattices

机译:弹性应变场对量子点超晶格自组织有序性的依赖

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A systematic investigation of the strain distribution of self-organized, lens-shaped quantum dot in the case of growth direction on (001) substrate was presented. The three-dimensional finite element analysis for an array of dots was used for the strain calculation. The dependence of the strain energy density distribution on the thickness of the capping layer was investigated in detail when the elastic characteristics of the matrix material were anisotropic. It is shown that the elastic anisotropic greatly influences the stress, strain, and strain energy density in the quantum dot structures. The anisotropic ratio of the matrix material and the combination with different thicknesses of the capping layer, may lead to different strain energy density minimum locations on the capping layer surface, which can result in various vertical ordering phenomena for the next layer of quantum dots, i.e. partial alignment, random alignment, and complete alignment.
机译:对(001)衬底上生长方向情况下自组织的透镜状量子点的应变分布进行了系统的研究。点阵列的三维有限元分析用于应变计算。当基质材料的弹性特性为各向异性时,详细研究了应变能密度分布对覆盖层厚度的依赖性。结果表明,弹性各向异性极大地影响了量子点结构中的应力,应变和应变能密度。基体材料的各向异性比率以及具有不同厚度的覆盖层的组合,可能导致覆盖层表面上的应变能密度最小位置不同,从而可能导致下一量子点层的各种垂直有序现象,即部分对齐,随机对齐和完全对齐。

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