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The role of faceting in biaxially textured thin films: Columnar morphology and abnormal tilting

机译:面位在双轴纹理薄膜中的作用:柱状形态和异常倾斜

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摘要

The ground-breaking properties of biaxially textured thin films have attracted increasing attention to the characterization and growth theory of their crystal morphologies. In particular, multi-faceted columnar structures developed during oblique angle deposition (OAD) show abnormal tilt angles that have not been previously captured by existing models. Current theories for the formation of biaxially aligned columnar structures overlook the fact that the surface diffusion on individual facets can be finite. In this work, a continuum model incorporating finite adatom mobility, flux-dependent sticking coefficient, and material-specific surface energies is employed to study the growth of a well-known MgO-OAD system. Experimentally observed morphologies are reproduced by simulating the shadowing growth of an array of preferentially oriented single crystals. We show that the abnormal tilting is elusive considering only the effects of faceting and shadowing. A proposed sticking coefficient in our model, determined by the component of adatom momentum parallel to the surface, is responsible for the development of abnormal tilting. The role of faceting is demonstrated by its effect on the resulting columnar morphologies. Using the proposed model, the characteristic morphology and tilting behavior of a CaF_2-OAD system are also obtained, which agree with experiments.
机译:双轴纹理薄膜的接地性能引起了越来越关注其晶体形态的表征和生长理论。特别地,在倾斜角沉积(OAD)期间显影的多面柱状结构示出了先前未被现有模型捕获的异常倾斜角度。用于形成双轴对齐的柱状结构的当前理论忽略了各个方面的表面扩散可以有限的事实。在这项工作中,采用包含有限的Adatom迁移率,依赖性粘附系数和材料特异性表面能的连续模型研究了众所周知的MgO-OAD系统的生长。通过模拟优先取向的单晶阵列的阴影生长来再现实验观察到的形态。我们表明异常倾斜是难以捉摸的考虑面位和阴影的影响。我们模型中提出的粘附系数,由平行于表面平行的Adatom动量的组分确定,负责发育异常倾斜。通过其对所得柱状形态的影响证明了刻面的作用。使用所提出的模型,还获得了CAF_2-OAD系统的特征形态和倾斜行为,这与实验一致。

著录项

  • 来源
    《Journal of Applied Physics》 |2020年第5期|055303.1-055303.12|共12页
  • 作者单位

    Department of Mechanical Engineering University of Canterbury Christchurch 8140 New Zealand;

    School of Physical and Chemical Sciences University of Canterbury Christchurch 8140 New Zealand;

    Department of Mechanical Engineering University of Canterbury Christchurch 8140 New Zealand;

    Department of Mechanical Engineering University of Canterbury Christchurch 8140 New Zealand;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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