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氧化石墨烯的厚度和化学还原对纳米级摩擦的影响。

The Effect of Thickness and Chemical Reduction of Graphene Oxide on Nanoscale Friction.

作者信息

Kwon Sangku, Lee Kyung Eun, Lee Hyunsoo, Koh Sang Joon, Ko Jae-Hyeon, Kim Yong-Hyun, Kim Sang Ouk, Park Jeong Young

机构信息

Center for Nanomaterials and Chemical Reactions, Institute for Basic Science (IBS) , Daejeon 34141, South Korea.

Graduate School of EEWS, Korea Advanced Institute of Science and Technology (KAIST) , Daejeon 34141, South Korea.

出版信息

J Phys Chem B. 2018 Jan 18;122(2):543-547. doi: 10.1021/acs.jpcb.7b04609. Epub 2017 Oct 3.

Abstract

The tribological properties of two-dimensional (2D) atomic layers are quite different from three-dimensional continuum materials because of the unique mechanical responses of 2D layers. It is known that friction on graphene shows a remarkable decreasing behavior as the number of layers increases, which is caused by the puckering effect. On other graphene derivatives, such as graphene oxide (GO) or reduced graphene oxide (rGO), the thickness dependence of friction is important because of the possibilities for technical applications. In this report, we demonstrate unexpected layer-dependent friction behavior on GO and rGO layers. Friction force microscopy measurements show that nanoscale friction on GO does not depend on the number of layers; however, after reduction, friction on rGO shows an inverse thickness dependence compared with pristine graphene. We show that the friction on rGO is higher than that on SiO at low load, and that an interesting crossover behavior at higher load occurs because of the lower friction coefficient and higher adhesion of the rGO. We provide a relevant interpretation that explains the effect of thickness and chemical reduction on nanoscale friction.

摘要

由于二维(2D)原子层独特的力学响应,其摩擦学特性与三维连续介质材料有很大不同。众所周知,随着石墨烯层数增加,其摩擦力呈现显著下降趋势,这是由褶皱效应引起的。对于其他石墨烯衍生物,如氧化石墨烯(GO)或还原氧化石墨烯(rGO),由于其在技术应用方面的可能性,摩擦力与厚度的关系十分重要。在本报告中,我们展示了GO和rGO层上出乎意料的与层数相关的摩擦行为。摩擦力显微镜测量表明,GO上的纳米级摩擦力不取决于层数;然而,还原后,rGO上的摩擦力与原始石墨烯相比呈现出与厚度相反的依赖关系。我们表明,在低负载下rGO上的摩擦力高于SiO上的摩擦力,并且在高负载下会出现有趣的交叉行为,这是由于rGO的摩擦系数较低和粘附力较高所致。我们提供了一种相关解释,阐述了厚度和化学还原对纳米级摩擦力的影响。

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