Cao Hongshuai, Qi Fugang, Ouyang Xiaoping, Zhao Nie, Zhou Yun, Li Beibei, Luo Wenzhong, Liao Bin, Luo Jun
School of Materials Science and Engineering, Xiangtan University, Xiangtan 411105, China.
College of Nuclear Science and Technology, Beijing Normal University, Beijing 100875, China.
Materials (Basel). 2018 Sep 16;11(9):1742. doi: 10.3390/ma11091742.
Multilayers of Ti doped diamond-like carbon (Ti-DLC) coatings were deposited on aluminum alloys by filtered cathodic vacuum arc (FCVA) technology using C₂H₂ as a reactive gas. The effect of different Ti transition layer thicknesses on the structure, mechanical and adhesion properties of the coatings, was investigated by scanning electron microscopy (SEM), Raman spectroscopy, X-ray photoelectron spectroscopy (XPS), nanoindentation and a scratch tester. The results showed that the Ti transition layer could improve interfacial transition between the coating and the substrate, which was beneficial in obtaining excellent adhesion of the coatings. The Ti transition layer thickness had no significant influence on the composition and structure of the coatings, whereas it affected the distortion of the sp²-C bond angle and length. Nanoindentation and scratch test results indicated that the mechanical and adhesion properties of the Ti-DLC coatings depended on the Ti transition layer thickness. The Ti transition layer proved favorable in decreasing the residual compressive stress of the coating. As the Ti transition layer thickness increased, the hardness value of the coating gradually decreased. However, its elastic modulus and adhesion exhibited an initial decrease followed by an increasing fluctuation. Among them, the Ti-DLC coating with a Ti transition layer thickness of 1.1 μm exhibited superior mechanical properties.
采用过滤阴极真空电弧(FCVA)技术,以C₂H₂作为反应气体,在铝合金表面沉积多层掺钛类金刚石碳(Ti-DLC)涂层。通过扫描电子显微镜(SEM)、拉曼光谱、X射线光电子能谱(XPS)、纳米压痕和划痕测试仪,研究了不同厚度的Ti过渡层对涂层结构、力学性能和附着力的影响。结果表明,Ti过渡层可以改善涂层与基体之间的界面过渡,有利于获得优异的涂层附着力。Ti过渡层的厚度对涂层的成分和结构没有显著影响,但会影响sp²-C键角和键长的畸变。纳米压痕和划痕测试结果表明,Ti-DLC涂层的力学性能和附着力取决于Ti过渡层的厚度。Ti过渡层有利于降低涂层的残余压应力。随着Ti过渡层厚度的增加,涂层的硬度值逐渐降低。然而,其弹性模量和附着力呈现出先下降后波动上升的趋势。其中,Ti过渡层厚度为1.1μm的Ti-DLC涂层表现出优异的力学性能。