Institute of Applied Mechanics and Biomedical Engineering, Taiyuan University of Technology, Taiyuan 030024, China.
College of Mechanics, Taiyuan University of Technology, Taiyuan 030024, China.
J Mech Behav Biomed Mater. 2018 Apr;80:235-245. doi: 10.1016/j.jmbbm.2018.01.036. Epub 2018 Feb 1.
Surface titanium (Ti) metallization was conducted on alumina (AlO) through chemical vapor deposition (CVD) method derived from non-contact pack cementation. The effects of different deposition temperature (1000 °C, 1050 °C, and 1100 °C) were examined in this scenario. The morphology, phase composition, and interfacial defects of the resulting films were systematically investigated through scanning electron microscopy, energy dispersive spectrometry, and X-ray diffraction. The nanomechanical characterization of the proposed thin films was evaluated by conducting nano-indentation tests at different depths. The results revealed that uniform Ti films were coated on the AlO substrate. During coating, the atoms on the matrix surface were driven to form different structure due to different deposition temperature, leading to disparate morphologies of the surface and the interface, which consequently influenced the binding force between the film and the substrate. Moreover, the nanomechanical properties were found to be related to the internal and interface structure. Decreased modulus and hardness were obtained for metallization films treated at 1050 °C, and plastic deformation was the main deformation pattern.
通过非接触包埋法衍生的化学气相沉积(CVD)方法在氧化铝(AlO)上进行表面钛(Ti)金属化。在此情况下,研究了不同沉积温度(1000°C、1050°C 和 1100°C)的影响。通过扫描电子显微镜、能谱仪和 X 射线衍射对所得薄膜的形貌、相组成和界面缺陷进行了系统研究。通过在不同深度进行纳米压痕试验对所提出的薄膜的纳米力学特性进行了评估。结果表明,均匀的 Ti 薄膜涂覆在 AlO 基底上。在涂层过程中,由于沉积温度的不同,基体表面的原子被驱动形成不同的结构,导致表面和界面的形貌不同,从而影响薄膜和基底之间的结合力。此外,纳米力学性能与内部和界面结构有关。在 1050°C 处理的金属化薄膜中,得到了较低的模量和硬度,并且塑性变形是主要的变形模式。