Effect of titanium interlayer configurations on residual stresses and performance of titanium/titanium nitride multilayer coatings

IF 2.4 4区 材料科学 Q3 MATERIALS SCIENCE, COATINGS & FILMS Surface Engineering Pub Date : 2024-04-12 DOI:10.1177/02670844241246931
Rashid Ali, Talha Faizi, S. Z. Abbas, Muhammad Imran Khan
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Abstract

Multilayer coatings provide an effective measure to control and optimise of residual stresses, enhance coating adhesion, fracture toughness, wear and corrosion resistance of coating system. In this study, we designed and produced bi-layer and four-layer titanium/titanium nitride magnetron sputtered coating configurations by altering the position of the interlayer. The in-plane residual stresses in different coating configurations are measured by multiple peak grazing incidence X-ray diffraction techniques. Subsequently, the effect of different compressive residual stresses on adhesion, mechanical properties, wear and corrosion resistance of coatings are investigated. Results show that the position of interlayer in multilayer coating configuration has a great impact on relaxation of residual stresses. The residual stresses are relieved by 26% and 46% by lowering the position of titanium interlayer from 800 nm at the top to 1000 nm and 1200 nm, respectively. The nanoindentation hardness is decreased by 11% and 13%, respectively. The wear rate of multilayer coating having interlayer position at 800 and 1000 nm from the top is ≈ 23% lower compared to bilayer however it is increased by ≈ 50% when interlayer coatings position changed to 1200 nm from the top. The interposition of interlayer in multilayer coating configurations decreased the corrosion current density by ≈ 50%. All multilayer coatings including higher residual stresses show better adhesion to the substrate compared to bilayer coatings which shows severe delamination.
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钛层间配置对钛/氮化钛多层涂层残余应力和性能的影响
多层涂层是控制和优化残余应力、增强涂层附着力、断裂韧性、耐磨性和耐腐蚀性的有效措施。在这项研究中,我们通过改变层间位置,设计并制作了双层和四层钛/氮化钛磁控溅射涂层结构。通过多峰掠入射 X 射线衍射技术测量了不同涂层配置中的面内残余应力。随后,研究了不同压缩残余应力对涂层的附着力、机械性能、耐磨性和耐腐蚀性的影响。结果表明,多层涂层配置中的层间位置对残余应力的松弛有很大影响。将钛夹层的位置从顶部的 800 nm 降低到 1000 nm 和 1200 nm 时,残余应力分别释放了 26% 和 46% 。纳米压痕硬度分别降低了 11% 和 13%。与双层涂层相比,夹层位置距顶部 800 纳米和 1000 纳米的多层涂层的磨损率≈23%,但当夹层位置变为距顶部 1200 纳米时,磨损率增加了≈50%。在多层涂层配置中插入中间层可使腐蚀电流密度降低≈50%。与出现严重分层的双层涂层相比,所有多层涂层(包括较高的残余应力)与基体的附着力都更好。
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来源期刊
Surface Engineering
Surface Engineering 工程技术-材料科学:膜
CiteScore
5.60
自引率
14.30%
发文量
51
审稿时长
2.3 months
期刊介绍: Surface Engineering provides a forum for the publication of refereed material on both the theory and practice of this important enabling technology, embracing science, technology and engineering. Coverage includes design, surface modification technologies and process control, and the characterisation and properties of the final system or component, including quality control and non-destructive examination.
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