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Decomposition pathways in age hardening of Ti-AI-N films

机译:Ti-Al-N薄膜时效硬化中的分解途径

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摘要

The ability to increase the thermal stability of protective coatings under work load gives rise to scientific and industrial interest in age hardening of complex nitride coating systems such as ceramic-like Ti_(1-x)Al_xN.However,the decomposition pathway of these systems from single-phase cubic to the thermodynamically stable binary nitrides (cubic TiN and wurtzite A1N),which are essential for age hardening,are not yet fully understood.In particular,the role of decomposition kinetics still requires more detailed investigation.In the present work,the combined effect of annealing time and temperature upon the nano-structural development of Ti_(0.46)Al_(0.54)N thin films is studied,with a thermal exposure of either 1 min or 120 min in 100℃ steps from 500℃ to 1400℃.The impact of chemical changes at the atomic scale on the development of micro-strain and mechanical properties is studied by post-annealing investigations using X-ray diffraction,nanoindentation,3D-atom probe tomography and high-resolution transmission electron microscopy.The results clearly demonstrate that the spinodal decomposition process,triggering the increase of micro-strain and hardness,although taking place throughout the entire volume,is enhanced at high diffusivity paths such as grain or column boundaries and followed within the grains.Ab initio calculations further show that the early stages of wurtzite A1N precipitation are connected with increased strain formation,which is in excellent agreement with experimental observations.
机译:在工作负荷下提高防护涂层的热稳定性的能力引起了科学和工业上对复杂氮化物涂层系统(例如陶瓷类Ti_(1-x)Al_xN)的时效硬化的科学和工业兴趣。对于时效硬化必不可少的单相立方到热力学稳定的二元氮化物(立方TiN和纤锌矿AlN),尤其是分解动力学的作用仍然需要更详细的研究。研究了退火时间和温度对Ti_(0.46)Al_(0.54)N薄膜纳米结构发展的综合影响,以500℃至1400℃的100℃步长暴露1min或120min通过X射线衍射,纳米压痕,3D原子探针层析成像和hig的后退火研究,研究了原子尺度化学变化对微应变和机械性能发展的影响。 h分辨率透射电子显微镜。结果清楚地表明,尽管发生在整个体积中,旋节线的分解过程触发了微应变和硬度的增加,但在高扩散率路径(如晶界或柱边界)处得到增强,并随后在从头算再计算表明纤锌矿AlN沉淀的早期与增加的应变形成有关,这与实验观察结果非常吻合。

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  • 来源
    《Journal of Applied Physics》 |2011年第2期|p.023515.1-023515.10|共10页
  • 作者单位

    Department Physical Metallurgy and Materials Testing,Montanuniversitdt Leoben,Fram-Josef-Str.18,A-8700 Leoben,Austria;

    Erich Schmid Institute of Materials Science,Austrian Academy of Sciences,Jahnstr.12,A-8700 Leoben,Austria,Department Materials Physics,Montanuniversitdt Leoben,Franz-Josef-Str.18,A-8700 Leoben,Austria;

    Department Physical Metallurgy and Materials Testing,Montanuniversitdt Leoben,Fram-Josef-Str.18,A-8700 Leoben,Austria,Department of Chemical Engineering,University of California,Santa Barbara,California 93106,USA;

    Department Physical Metallurgy and Materials Testing,Montanuniversitdt Leoben,Fram-Josef-Str.18,A-8700 Leoben,Austria;

    Erich Schmid Institute of Materials Science,Austrian Academy of Sciences,Jahnstr.12,A-8700 Leoben,Austria,Department Materials Physics,Montanuniversitdt Leoben,Franz-Josef-Str.18,A-8700 Leoben,Austria;

    Erich Schmid Institute of Materials Science,Austrian Academy of Sciences,Jahnstr.12,A-8700 Leoben,Austria,Department Materials Physics,Montanuniversitdt Leoben,Franz-Josef-Str.18,A-8700 Leoben,Austria;

    Laboratory for Nanoscale Materials Science,Swiss Federal Laboratories for Materials Science and Technology,EMPA,Uberlandstr.129,CH-8600 Diibendorf,Switzerland;

    Laboratory for Nanoscale Materials Science,Swiss Federal Laboratories for Materials Science and Technology,EMPA,Uberlandstr.129,CH-8600 Diibendorf,Switzerland;

    Department Physical Metallurgy and Materials Testing,Montanuniversitdt Leoben,Fram-Josef-Str.18,A-8700 Leoben,Austria,Christian Doppler Laboratory for Early Stages of Precipitation,Montanuniversitdt Leoben,Franz-Josef-Str.18,A-8700 Leoben,Austria;

    Department Physical Metallurgy and Materials Testing,Montanuniversitdt Leoben,Fram-Josef-Str.18,A-8700 Leoben,Austria;

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