Zhang Qiang, Zhang Guiju, Huang Yongwang, He Shan, Li Yong, Jin Lan, Han Jingbin
State Key Laboratory of Chemical Resource Engineering, Beijing University of Chemical Technology, Beijing 100029, China.
Quzhou Institute for Innovation in Resource Chemical Engineering, Quzhou 324000, Zhejiang Province, China.
ACS Appl Mater Interfaces. 2024 Jan 31;16(4):5316-5325. doi: 10.1021/acsami.3c17322. Epub 2024 Jan 16.
Surface and interfacial engineering of nanomaterials is essential for improving dispersion stability in liquids. In this study, we report that oleic acid (OA)- and stearic acid (SA)-functionalized layered double hydroxide (LDH) nanosheets as lubricant additives can achieve high dispersion and reduce friction and wear. LDH is a typical layered structure, and OA and SA are long-chain organic molecules that are not only compatible with base oils but also act as friction-reducing agents. The OA and SA molecules were branched onto ZnMgAl LDH nanosheets using dehydration condensation between the exposed OH groups on the surface of LDH and the COOH groups on the OA and SA molecules. Compared with that of the pristine ZnMgAl LDH, the dispersion of OA-ZnMgAl LDH and SA-ZnMgAl LDH was significantly improved. The surface-modified LDH exhibited superior tribological properties and great stability due to the synergistic lubrication effect between OA, SA, and LDH. Even at an ultralow concentration (0.15 wt %), the coefficient of friction and wear volume were reduced by ∼65 and ∼99%, respectively, compared to those of the base oil. Due to the green and simple synthesis method and excellent tribological properties, surface-functionalized LDH has enormous possibilities for future industrial applications.
纳米材料的表面和界面工程对于提高其在液体中的分散稳定性至关重要。在本研究中,我们报道了油酸(OA)和硬脂酸(SA)功能化的层状双氢氧化物(LDH)纳米片作为润滑添加剂可实现高度分散并减少摩擦和磨损。LDH是一种典型的层状结构,OA和SA是长链有机分子,它们不仅与基础油相容,还可作为减摩剂。通过LDH表面暴露的OH基团与OA和SA分子上的COOH基团之间的脱水缩合反应,将OA和SA分子连接到ZnMgAl LDH纳米片上。与原始ZnMgAl LDH相比,OA-ZnMgAl LDH和SA-ZnMgAl LDH的分散性得到显著改善。由于OA、SA和LDH之间的协同润滑作用,表面改性的LDH表现出优异的摩擦学性能和高稳定性。即使在超低浓度(0.15 wt%)下,与基础油相比,摩擦系数和磨损体积分别降低了约65%和约99%。由于其绿色简单的合成方法和优异的摩擦学性能,表面功能化的LDH在未来工业应用中具有巨大潜力。