Suppr超能文献

通过甘油在疏水石墨烯涂层上实现宏观超润滑性。

Macroscale Superlubricity Achieved on the Hydrophobic Graphene Coating with Glycerol.

作者信息

Liu Yanfei, Li Jinjin, Ge Xiangyu, Yi Shuang, Wang Hongdong, Liu Yuhong, Luo Jianbin

机构信息

State Key Laboratory of Tribology, Tsinghua University, Beijing 100084, China.

出版信息

ACS Appl Mater Interfaces. 2020 Apr 22;12(16):18859-18869. doi: 10.1021/acsami.0c01515. Epub 2020 Apr 10.

Abstract

Introduction of graphene-family nanoflakes in liquid results in a reduction in friction and enhanced wear resistance. However, the high demand for dispersity and stability of the nanoflakes in liquid largely restricted the choice of graphene-family nanoflakes thus far. This study proposed a new strategy to overcome this limitation, involving the formation of a graphene coating with deposited graphene-family nanoflakes, followed by the lubrication of the coating with glycerol solution. Pristine graphene (PG), fluorinated graphene (FG), and graphene oxide (GO) nanoflakes were chosen to be deposited on the respective SiO substrates to form graphene coatings, and then an aqueous solution of glycerol was used as lubricant. The coefficient of friction (COF) and wear rate were reduced for all deposited coatings. However, the PG coating exhibited better lubrication and antiwear performance than FG and GO coatings. A robust superlubricity with COF of approximately 0.004 can be achieved by combining glycerol with the PG coating. The superlubricity mechanism was attributed to the formation of a tribofilm, mainly composed of graphene nanoflakes in the contact zone. The extremely low friction achieved on the hydrophobic graphene coating with liquid can aid in the development of a high-performing new lubrication system for industrial applications.

摘要

将石墨烯基纳米薄片引入液体中可降低摩擦并增强耐磨性。然而,迄今为止,对纳米薄片在液体中的分散性和稳定性的高要求在很大程度上限制了石墨烯基纳米薄片的选择。本研究提出了一种新策略来克服这一限制,该策略包括形成带有沉积石墨烯基纳米薄片的石墨烯涂层,然后用甘油溶液对该涂层进行润滑。选择原始石墨烯(PG)、氟化石墨烯(FG)和氧化石墨烯(GO)纳米薄片分别沉积在各自的SiO基底上以形成石墨烯涂层,然后将甘油水溶液用作润滑剂。所有沉积涂层的摩擦系数(COF)和磨损率均降低。然而,PG涂层表现出比FG和GO涂层更好的润滑和抗磨性能。通过将甘油与PG涂层结合,可以实现COF约为0.004的强大超润滑性。超润滑机制归因于摩擦膜的形成,该摩擦膜主要由接触区域中的石墨烯纳米薄片组成。在疏水性石墨烯涂层上与液体一起实现的极低摩擦有助于开发用于工业应用的高性能新型润滑系统。

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