Materials Science Group, Indira Gandhi Centre for Atomic Research, Kalpakkam, India.
Department of Solar Energy and Environmental Physics, Swiss Institute for Dryland Environmental and Energy Research, Jacob Blaustein Institutes for Desert Research, Ben-Gurion University of the Negev, Midreshet Ben-Gurion 8499000, Israel.
Sci Rep. 2017 Mar 27;7:45030. doi: 10.1038/srep45030.
Functionalized and fully characterized graphene-based lubricant additives are potential 2D materials for energy-efficient tribological applications in machine elements, especially at macroscopic contacts. Two different reduced graphene oxide (rGO) derivatives, terminated by hydroxyl and epoxy-hydroxyl groups, were prepared and blended with two different molecular weights of polyethylene glycol (PEG) for tribological investigation. Epoxy-hydroxyl-terminated rGO dispersed in PEG showed significantly smaller values of the friction coefficient. In this condition, PEG chains intercalate between the functionalized graphene sheets, and shear can take place between the PEG and rGO sheets. However, the friction coefficient was unaffected when hydroxyl-terminated rGO was coupled with PEG. This can be explained by the strong coupling between graphene sheets through hydroxyl units, causing the interaction of PEG with the rGO to be non- effective for lubrication. On the other hand, antiwear properties of hydroxyl-terminated rGO were significantly enhanced compared to epoxy-hydroxyl functionalized rGO due to the integrity of graphene sheet clusters.
功能化和全表征的基于石墨烯的润滑剂添加剂是用于机器元件中节能摩擦应用的潜在二维材料,特别是在宏观接触中。制备了两种不同的羟基和环氧-羟基封端的还原氧化石墨烯 (rGO) 衍生物,并与两种不同分子量的聚乙二醇 (PEG) 混合进行摩擦学研究。分散在 PEG 中的环氧-羟基封端 rGO 显示出摩擦系数显著降低。在这种情况下,PEG 链在功能化石墨烯片之间插层,并且可以在 PEG 和 rGO 片之间发生剪切。然而,当羟基封端 rGO 与 PEG 结合时,摩擦系数没有受到影响。这可以通过石墨烯片通过羟基单元的强耦合来解释,导致 PEG 与 rGO 的相互作用对润滑无效。另一方面,与环氧-羟基功能化 rGO 相比,羟基封端 rGO 的抗磨性能显著提高,这是由于石墨烯片簇的完整性。