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首页> 外文期刊>Physical Review. B, Condensed Matter >Striped, honeycomb, and twisted moire patterns in surface adsorption systems with highly degenerate commensurate ground states
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Striped, honeycomb, and twisted moire patterns in surface adsorption systems with highly degenerate commensurate ground states

机译:表面吸附系统中的条纹,蜂窝和扭曲的莫尔图案,具有高度简并相称地面态

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摘要

Atomistically thin adsorbate layers on surfaces with a lattice mismatch display complex spatial patterns and ordering due to strain-driven self-organization. In this work, a general formalism to model such ultrathin adsorption layers that properly takes into account the competition between strain and adhesion energy of the layers is presented. The model is based on the amplitude expansion of the two-dimensional phase field crystal (PFC) model, which retains atomistic length scales but allows relaxation of the layers at diffusive time scales. The specific systems considered here include cases where both the film and the adsorption potential can have either honeycomb (H) or triangular (T) symmetry. These systems include the so-called (1 × 1), (3~(1/2) ×3~(1/2)) R30°, (2 × 2), (7~(1/2) ×7~(1/2)) R19.1°, and other higher order states that can contain a multitude of degenerate commensurate ground states. The relevant phase diagrams for many combinations of the H and T systems are mapped out as a function of adhesion strength and misfit strain. The coarsening patterns in some of these systems is also examined. The predictions are in good agreement with existing experimental data for selected strained ultrathin adsorption layers.
机译:具有晶格错配的表面上的原子薄吸附层,并由于应变驱动的自组织而显示复杂的空间图案和排序。在这项工作中,呈现了一种普遍的形式主义来模拟这种超薄吸附层,其适当考虑到层的应变和粘合能量之间的竞争。该模型基于二维相场晶体(PFC)模型的幅度膨胀,其保留原子长度尺度,但允许在扩散时间尺度下放松层。这里考虑的特定系统包括膜和吸附电位都可具有蜂窝(H)或三角形(T)对称性的情况。这些系统包括所谓的(1×1),(3〜(1/2)×3〜(1/2))R30°,(2×2),(7〜(1/2)×7〜 (1/2))R19.1°和其他更高阶的状态,可以包含多种退化的相称地面态。用于H和T系统的许多组合的相关相图是用粘附强度和错配菌株的函数映射的。还检查了一些这些系统中的粗化模式。预测与所选应变超薄吸附层的现有实验数据吻合良好。

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  • 来源
    《Physical Review. B, Condensed Matter》 |2017年第20期|195439.1-195439.16|共16页
  • 作者单位

    Department of Physics Oakland University Rochester Michigan 48309 USA;

    Water Research Center for Agriculture and Mining (CRHIAM) University of Concepcion 4030000 Concepcion Chile;

    Laboratorio Associado de Sensores e Materiais Instituto Nacional de Pesquisas Espaciais 12227-010 Sao Jose dos Campos SP Brazil Department of Physics P.O. Box 1843 Brown University Providence RI 02912-1843 USA;

    Department of Physics P.O. Box 1843 Brown University Providence RI 02912-1843 USA;

    Department of Physics P.O. Box 1843 Brown University Providence RI 02912-1843 USA COMP CoE at the Department of Applied Physics Aalto University School of Science P.O. Box 11000 FI-00076 Aalto Espoo Finland Departments of Mathematical Sciences and Physics Loughborough University Loughborough Leicestershire LE11 3TU UK;

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