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Grain boundary driven Plateau-Rayleigh instability in multilayer nanocrystalline thin film: A phase-field study

机译:多层纳米晶体薄膜中晶界驱动的高原-瑞利不稳定性:相场研究

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摘要

Thermal stability of nanocrystalline multilayer thin film is of paramount importance as the applications often involve high temperature. Here we report on-the layer instability phenomenon in binary polycrystalline thin film initiating from the grain boundary migrations at higher temperatures using phase-field simulations. Effect of layer thickness, bilayer spacing and the absence of grain boundary are also investigated along with the grain boundary mobility of individual phases on the layer stability. Layer instability in the polycrystalline film is shown to arise from the grain boundary grooving which originates spontaneously from the presence of grain boundaries. Our results show that the growth of the perturbation generated from the differential curvature follows Plateau-Rayleigh instability criterion. Increase in layer thickness, lower bilayer thickness as well as lower grain boundary mobility improve layer stability. Phase-field simulations show similar microstructural evolution as has been observed in our zirconium (Zr)/zirconium nitride (ZrN) system experimentally. Detail analysis performed in this work to understand the mechanisms of layer instability leads us to predict measures which will improve the thermal stability of multilayer nanocrystalline thin film. (C) 2017 Elsevier Ltd. All rights reserved.
机译:纳米晶体多层薄膜的热稳定性至关重要,因为应用经常涉及高温。在这里,我们报告使用相场模拟,从较高温度下的晶界迁移开始,在二元多晶薄膜中出现层不稳定性现象。还研究了层厚度,双层间距和不存在晶界的影响,以及各个相的晶界迁移率对层稳定性的影响。显示出多晶膜中的层不稳定性是由晶界开槽引起的,该晶界开槽是由于存在晶界而自发产生的。我们的结果表明,由微分曲率产生的扰动的增长遵循高原-瑞利不稳定性准则。层厚度的增加,双层厚度的降低以及晶界迁移率的降低改善了层的稳定性。相场模拟显示出与在我们的锆(Zr)/氮化锆(ZrN)系统中实验观察到的相似的微观结构演变。在这项工作中进行的详细分析,以了解层不稳定性的机制,使我们能够预测将改善多层纳米晶体薄膜热稳定性的措施。 (C)2017 Elsevier Ltd.保留所有权利。

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