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Synthesis, Dispersion, and Tribological Performance of Alkyl‐functionalized Graphene Oxide as an Oil Lubricant Additive and Synergistic Interaction with IF‐WS2

烷基 石墨烯 润滑油 材料科学 拉曼光谱 氧化物 X射线光电子能谱 化学工程 扫描电子显微镜 傅里叶变换红外光谱 润滑性 复合材料 纳米技术 有机化学 化学 冶金 工程类 物理 光学
作者
Jong‐Seok Han,Jin‐Yeong Choi,Min Yoo,Chang‐Seop Lee
出处
期刊:Bulletin of The Korean Chemical Society [Wiley]
卷期号:41 (5): 518-529 被引量:5
标识
DOI:10.1002/bkcs.12002
摘要

Graphene and inorganic fullerene‐type WS 2 structures (IF‐WS 2 ) are two‐dimensional (2D) materials with excellent lubricant property. They reduce the friction between contact surfaces. However, graphene is synthesized as a form of graphene oxide (GO) with a number of oxygen functional groups occurring on the surface, due to which it is difficult to use as a hydrophobic lubricant. Thus, this study synthesized functionalized graphene oxide (FGO) by attaching the alkyl chain to the surface of GO. The synthesized FGO enhanced the lipophilic property due to the alkyl chain. In addition, 1‐methyl‐2,4‐bis( N ‐octadecylurea)benzene (MOB) was synthesized and added as a gelator to improve the durability of the dispersion. FGO was synthesized via two‐stage reaction in which the alkyl chain was introduced by reacting with alkyl chloride after modifying GO to NH 2 ‐GO. MOB was synthesized by reacting with octadecylamine and toluene‐2,4‐diisocyanate. To analyze the morphology, microstructure, and functional groups of GO, FGO, and IF‐WS 2 , scanning electron microscopy, transmission electron microscopy, and Fourier transform‐infrared spectroscopy were performed. To analyze the binding energy, X‐ray photoelectron spectroscopy was performed. X‐ray diffraction and Raman spectroscopy were conducted for crystalline analysis. The synthesized FGO, WS 2 , and MOB were added to polyalphaolefin4 (PAO4) and distributed via ultrasonic processing. The friction characteristics were analyzed with the four‐ball test and high‐frequency friction/wear tester. The lubricant, which was gelated by adding MOB, maintained dispersion even after 30 days. The wear track size and friction coefficient of PAO4 oil containing 0.1 wt % FGO6, 1 wt % IF‐WS 2 , and 1 wt % MOB were reduced by 21% and 13%, respectively, compared with those of PAO4 oil lacking the solid lubricant, which verified the improved wear resistance. The characteristics of tribology were also improved due to the synergistic interaction between FGO and IF‐WS 2 .

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