Luo Dawei, Zhou Qing, Ye Wenting, Ren Yue, Greiner Christian, He Yixuan, Wang Haifeng
State Key Laboratory of Solidification Processing, Center of Advanced Lubrication and Seal Materials, Northwestern Polytechnical University, Xi'an, Shaanxi 710072, P.R. China.
Institute for Applied Materials (IAM), Karlsruhe Institute of Technology (KIT), 76131 Karlsruhe, Germany.
ACS Appl Mater Interfaces. 2021 Nov 24;13(46):55712-55725. doi: 10.1021/acsami.1c16949. Epub 2021 Nov 1.
Refractory high entropy alloys (RHEAs) have been proven to have excellent mechanical properties with a potential use as protective thin films. However, the combination of high hardness with low friction and wear is a major challenge in the design of RHEA films. In this study, we show that NbMoWTa/Ag self-lubricating multilayered films give a remarkable reduction in friction and at same time maintain high hardness. Interestingly, it is found that the bcc superlattice dominates in both NbMoWTa and Ag layers and the interfaces become coherent when the individual layer thickness is reduced below 10 nm. The film properties are then strongly dependent on ranging from 100 to 2.5 nm, and the most promising properties are obtained when the interface structure transforms from incoherent to coherent one. Especially, the multilayer with = 2.5 nm exhibits superior tribological performance over monolithic NbMoWTa due to the significant coherent strengthening along with the self-lubricating ability in the multilayer. This tailored phase transition and coherent structure between the matrix and lubrication phases can also provide an optimal wear rate-coefficient of friction combination, which is higher than most of the Ag-containing self-lubricating films. The current work might open a new route toward the development of innovative self-lubricating RHEA films with excellent tribological properties.
难熔高熵合金(RHEAs)已被证明具有优异的机械性能,有作为防护薄膜的潜在用途。然而,在RHEA薄膜设计中,要兼具高硬度与低摩擦磨损是一项重大挑战。在本研究中,我们表明NbMoWTa/Ag自润滑多层膜能显著降低摩擦,同时保持高硬度。有趣的是,发现体心立方超晶格在NbMoWTa层和Ag层中均占主导,且当各层厚度减小至10nm以下时,界面变得相干。薄膜性能强烈依赖于从100nm到2.5nm的层厚,当界面结构从非相干转变为相干时可获得最具前景的性能。特别是,层厚为2.5nm的多层膜相较于整块NbMoWTa展现出卓越的摩擦学性能,这归因于多层膜中显著的相干强化以及自润滑能力。基体相与润滑相之间这种定制的相变和相干结构还能提供最优的磨损率 - 摩擦系数组合,高于大多数含Ag自润滑薄膜。当前工作可能为开发具有优异摩擦学性能的创新性自润滑RHEA薄膜开辟一条新途径。