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Evolution of faceted crystal surfaces: Modeling and analysis.

机译:多面晶体表面的演变:建模和分析。

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摘要

Nanoscale materials hold the promise of leading to breakthroughs in the development of electronics. These materials are of great interest especially at low temperatures due to their thermal stability. In order to predict the evolution of crystal surfaces at such precision, physical effects across a wide range of scales, from atomistic processes to large-scale thermodynamics, must be consolidated.;This thesis aims to incorporate the microscale information carried by the atomic dynamics to the evolution of an apparently smooth surface at macroscopic scale. At the nanometer scale, the motion of atomic defects in the surface is described by ordinary differential equations (ODEs). At larger scale, the atomic roughness is no longer detectable and the surface evolution can be described by a smooth function for the surface height on some reference plane. This height function satisfies certain partial differential equations (PDEs) on the basis of the thermodynamic principles. These ODEs and PDEs separately yield predictions of distinct characteristics for the morphological evolution of a surface. While modeling at small scale has the advantage of simple physical principles, observation at the larger scale offers more tangible intuition for the topographic evolution and it is often more suitable for relating to experiments.;A principal theme of this thesis is to understand the difference or error between these two predictions. The error can be conveniently assessed numerically but this is not sufficient to achieve a deeper understanding of the problem. To this end, this thesis addresses both quantitative notion of the error through numerics and systematic and conceptual notion of the error. In order to give a concrete notion to this difference, it is crucial to carefully interpret what is meant by a solution of the evolusion PDEs; the subtlety pertains to the choice of method used to solve the PDE. Recently, it has been shown that the solutions of PDEs obtained solely from the thermodynamic principles are prone to deviate from the underlining microscopic dynamics. This thesis investigates the cause of this discrepancy and propose a reconciliation by exploring a new continuum model that may plausibly incorporate microscopic influences.
机译:纳米级材料有望带来电子技术发展的突破。这些材料由于其热稳定性而特别受到关注,特别是在低温下。为了以这种精度预测晶体表面的演化,必须整合从原子过程到大规模热力学的各种尺度的物理效应。宏观尺度上表面光滑表面的演变。在纳米尺度上,表面中原子缺陷的运动由常微分方程(ODE)描述。在更大的规模上,不再能够检测到原子粗糙度,并且可以通过某个参考平面上的表面高度的平滑函数来描述表面演变。该高度函数根据热力学原理满足某些偏微分方程(PDE)。这些ODE和PDE分别预测表面形态演变的不同特征。虽然小规模的建模具有简单的物理原理的优势,但大范围的观测为地形演化提供了更直观的直觉,并且通常更适合与实验相关。;本论文的主要主题是了解差异或这两个预测之间的误差。可以通过数字方便地评估误差,但这不足以对问题进行更深入的了解。为此,本论文既通过数值来说明误差的定量概念,又从误差的系统性和概念性角度来论述。为了给这种区别提供一个具体的概念,至关重要的是仔细解释解散PDE的含义。细微之处在于解决PDE所用方法的选择。近来,已经显示出仅从热力学原理获得的PDE的溶液易于偏离下划线的微观动力学。本文研究了造成这种差异的原因,并通过探索一种可能包含微观影响的新的连续模型来提出和解。

著录项

  • 作者

    Nakamura, Kanna.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Mathematics.;Materials science.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 176 p.
  • 总页数 176
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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