Liu Chao, Xue Xin, Yuan Qiming, Lin Yang, Bao Yan, He Yinkun, Zhang Wenbo
Key Laboratory of Auxiliary Chemistry and Technology for Chemical Industry, Ministry of Education, Shaanxi Collaborative Innovation Center of Industrial Auxiliary Chemistry and Technology, Shaanxi University of Science and Technology, Xi'an 710021, China.
College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science and Technology, Xi'an 710021, China.
Polymers (Basel). 2022 Aug 12;14(16):3289. doi: 10.3390/polym14163289.
The poor compatibility between the polymer matrix and complex modification processes greatly affects the excellent tribological properties of graphene in the polymer matrix. In this study, a covalent organic framework (COF)-coated graphene hybrid lubricating filler (G/COFs) was synthesized in situ using a sample one-step mechanochemical synthesis process. This was used to improve the tribological properties of bismaleimide (BMI) resin. The morphology and microstructure of the G/COFs hybrid were characterized, and the effect of the added amount on the tribological properties of the G/COFs/BMI composites was studied. The results showed that the G/COFs hybrid could improve the stability of the friction coefficient and decrease the volume wear rate of BMI composites. Compared to the neat BMI, the 0.6 wt% G/COFs/BMI composites showed optimal tribological performance, with the friction coefficient and volume wear rate decreasing from 0.35 to 0.14 and from 48 × 10 to 10.6 × 10 mm/(N‧m), respectively. In addition, the G/COFs/BMI composites showed lower friction coefficient fluctuations and volume wear rates than G/BMI composites. This is mainly attributed to the fact that the deposition of COFs can not only effectively prevent the aggregation of graphene nanosheets, but can also significantly improve the compatibility and interfacial bond between the graphene and BMI matrix. Moreover, the good synergistic effect between the lamellar COFs and graphene nanosheets can generate high-quality self-lubricating transfer films during the friction process. The excellent dispersibility, efficient chemical functionalization, better friction reduction and wear-resistance properties, and facile preparation method make graphene/COFs hybrid nanoparticles promising as an excellent lubricating filler.
聚合物基体与复杂改性工艺之间的相容性差,极大地影响了石墨烯在聚合物基体中的优异摩擦学性能。在本研究中,采用样品一步机械化学合成法原位合成了共价有机框架(COF)包覆的石墨烯杂化润滑填料(G/COFs)。将其用于改善双马来酰亚胺(BMI)树脂的摩擦学性能。对G/COFs杂化物的形貌和微观结构进行了表征,并研究了添加量对G/COFs/BMI复合材料摩擦学性能的影响。结果表明,G/COFs杂化物可提高摩擦系数的稳定性,降低BMI复合材料的体积磨损率。与纯BMI相比,0.6 wt%的G/COFs/BMI复合材料表现出最佳的摩擦学性能,摩擦系数和体积磨损率分别从0.35降至0.14,从48×10降至10.6×10 mm/(N‧m)。此外,G/COFs/BMI复合材料比G/BMI复合材料表现出更低的摩擦系数波动和体积磨损率。这主要归因于COFs的沉积不仅可以有效地防止石墨烯纳米片的聚集,还可以显著提高石墨烯与BMI基体之间的相容性和界面结合力。此外,层状COFs与石墨烯纳米片之间良好的协同效应可在摩擦过程中生成高质量的自润滑转移膜。优异的分散性、高效的化学功能化、更好的减摩耐磨性能以及简便的制备方法,使得石墨烯/COFs杂化纳米粒子有望成为一种优异的润滑填料。