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结构对超薄石墨烯和氧化石墨烯薄膜摩擦学性能的影响。

Effect of structure on the tribology of ultrathin graphene and graphene oxide films.

作者信息

Chen Hang, Filleter Tobin

机构信息

Department of Mechanical & Industrial Engineering, 5 King's College Road, Toronto, ON M5S 3G8 Canada.

出版信息

Nanotechnology. 2015 Mar 27;26(13):135702. doi: 10.1088/0957-4484/26/13/135702. Epub 2015 Mar 9.

Abstract

The friction and wear properties of graphene and graphene oxide (GO) with varying C/O ratio were investigated using friction force microscopy. When applied as solid lubricants between a sliding contact of a silicon (Si) tip and a SiO2/Si substrate, graphene and ultrathin GO films (as thin as 1-2 atomic layers) were found to reduce friction by ∼6 times and ∼2 times respectively as compared to the unlubricated contact. The differences in measured friction were attributed to different interfacial shear strengths. Ultrathin films of GO with a low C/O ratio of ∼2 were found to wear easily under small normal load. The onset of wear, and the location of wear initiation, is attributed to differences in the local shear strength of the sliding interface as a result of the non-homogeneous surface structure of GO. While the exhibited low friction of GO as compared to SiO2 makes it an economically viable coating for micro/nano-electro-mechanical systems with the potential to extend the lifetime of devices, its higher propensity for wear may limit its usefulness. To address this limitation, the wear resistance of GO samples with a higher C/O ratio (∼4) was also studied. The higher C/O ratio GO was found to exhibit much improved wear resistance which approached that of the graphene samples. This demonstrates the potential of tailoring the structure of GO to achieve graphene-like tribological properties.

摘要

使用摩擦力显微镜研究了具有不同碳氧比的石墨烯和氧化石墨烯(GO)的摩擦磨损性能。当作为固体润滑剂应用于硅(Si)尖端与SiO2/Si衬底的滑动接触之间时,发现石墨烯和超薄GO膜(薄至1-2个原子层)与无润滑接触相比,摩擦力分别降低了约6倍和约2倍。测量摩擦力的差异归因于不同的界面剪切强度。发现碳氧比约为2的低C/O比超薄GO膜在小法向载荷下容易磨损。磨损的开始以及磨损起始位置归因于由于GO的非均匀表面结构导致的滑动界面局部剪切强度的差异。虽然与SiO2相比,GO表现出的低摩擦使其成为微纳机电系统经济可行的涂层,有可能延长器件寿命,但其较高的磨损倾向可能会限制其用途。为了解决这一限制,还研究了具有较高碳氧比(约4)的GO样品的耐磨性。发现较高C/O比的GO表现出大大改善的耐磨性,接近石墨烯样品的耐磨性。这证明了调整GO结构以实现类似石墨烯摩擦学性能的潜力。

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