Feng Yang, Chen Zhuo, Zhao Nan, Liu Guoqiang, Zhou Feng, Liu Weimin
Center of Advanced Lubrication and Sealing Materials, State Key Laboratory of Solidification Processing, Northwestern Polytechnical University, Xi'an 710072, China.
State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, China.
ACS Omega. 2021 Nov 17;6(47):32178-32185. doi: 10.1021/acsomega.1c04988. eCollection 2021 Nov 30.
Since titanium alloys have been widely used as joint replacement biomaterials, their superficial lubrication has evolved to be a critical factor for normal use. For this purpose, one kind of typical microgel, poly(NIPAAm--AA), was synthesized by emulsifier-free emulsion polymerization and used as an aqueous lubricating additive between titanium alloy contacts. The results show that the as-synthesized microgels reduced the coefficient of friction by 46% and the wear volume by 45%, compared with pure water. Meanwhile, due to their thermosensitive property, the microgels were employed as smart additives to modulate the interfacial friction, which was attributed to the transition of the hydrated state and the elastic deformation of microgel particles. To further dissect the lubrication mechanism, it was found that the lubricating property of microgels was substantially associated with the formation of a hydrated layer surrounding microgels, microbearing effect, interfacial adsorption, and the colloidal stability. Looking beyond, as one kind of soft colloidal lubricant, the microgels may play an important role in the biomedical metal lubrication.
由于钛合金已被广泛用作关节置换生物材料,其表面润滑已成为正常使用的关键因素。为此,通过无乳化剂乳液聚合合成了一种典型的微凝胶聚(NIPAAm-AA),并用作钛合金接触之间的水性润滑添加剂。结果表明,与纯水相比,合成的微凝胶使摩擦系数降低了46%,磨损体积降低了45%。同时,由于其热敏特性,微凝胶被用作智能添加剂来调节界面摩擦,这归因于水合状态的转变和微凝胶颗粒的弹性变形。为了进一步剖析润滑机制,发现微凝胶的润滑性能与围绕微凝胶形成的水合层、微轴承效应、界面吸附和胶体稳定性密切相关。展望未来,作为一种软胶体润滑剂,微凝胶可能在生物医学金属润滑中发挥重要作用。