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Influence of surface relaxation on solute atoms positioning within atom probe tomography reconstructions

机译:表面松弛对原子探测断层扫描重建中溶质原子定位的影响

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摘要

While thermal or field-induced surface migration has been invoked often in past literature to rationalize the experimental observations of solute and impurity atoms segregation to specific poles and zones lines in atom probe tomography (APT) reconstructions, it does not satisfactorily explain all experimental results. Using a combined finite-element and molecular dynamics simulation approach that models the field evaporation process from mechanically relaxed emitter structures, we show that an additional mechanism, athermal relaxation, can also drive significant solute migration. The mechanism is illustrated for Cu in solid solution in Al, which exhibits segregation of Cu to ?111? poles and along [110] zone lines in reconstructed APT data. The higher bonding energy of Cu atoms on the surface, confirmed using density-functional theory calculations, causes longer retention on the surface and preferential evaporation of neighboring Al atoms with subsequent athermal relaxation of Cu into higher-neighbor-count sites left vacant by evaporating Al neighbors. This in turn results in barrier-free long-range migration of the Cu atoms by a series of relaxation events that follow the receding terrace ledges towards high-neighbor count poles and zone lines. This mechanism fundamentally limits spatial resolution in the limit of zero temperature.
机译:在过去的文献中经常调用热或现场诱导的表面迁移,以合理化溶质和杂质原子的实验观察到原子探测断层摄影(APT)重建中的特定极点和区域线,因此不会令人满意地解释所有实验结果。使用组合的有限元和分子动力学模拟方法,模拟机械放宽的发射极具结构的场蒸发过程,我们表明,额外的机制,滴管弛豫,也可以推动显着的溶质迁移。在Al中的固溶体中的Cu的Cu,其表现出Cu的溶液,其表现出Cu与β111的偏析。磁极和沿[110] ZONE线在重建的APT数据中。使用密度官能理论计算证实表面上Cu原子的较高键合能量,导致较长的保留对相邻的Al原子的表面和优先蒸发,随后通过蒸发Al留下空置的高邻核位点。邻居。这反过来导致Cu原子通过一系列放松事件的无势垒远程迁移,该事件跟随后退露台架向高邻磁场和区域线。该机制基本上限制了零温度限制的空间分辨率。

著录项

  • 来源
    《Materials Characterization》 |2018年第2018期|共12页
  • 作者单位

    Department of Materials Science and Engineering The Ohio State University;

    Department of Materials Science and Engineering The Ohio State University;

    Department of Materials Science and Engineering University of Michigan;

    Department of Materials Science and Engineering University of Michigan;

    Department of Materials Science and Engineering University of Michigan;

    Department of Materials Science and Engineering The Ohio State University;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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