Why is Superlubricity of Diamond‐Like Carbon Rare at Nanoscale?

Author:

Jang Seokhoon1ORCID,Colliton Ana G.2,Flaih Hind S.2,Irgens Eskil M. K.2,Kramarczuk Lucas J.2,Rauber Griffin D.2,Vickers Jordan2,Ogrinc Andrew L.1,Zhang Zhenxi3,Gong Zhenbin3,Chen Zhe4ORCID,Borovsky Brian P.2ORCID,Kim Seong. H.1ORCID

Affiliation:

1. Department of Chemical Engineering and Materials Research Institute Pennsylvania State University University Park PA 16802 USA

2. Department of Physics St. Olaf College Northfield MN 55057 USA

3. State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics Chinese Academy of Sciences Lanzhou 730000 China

4. State Key Laboratory of Fluid Power and Mechatronic Systems Zhejiang University Hangzhou 310027 China

Abstract

AbstractHydrogenated diamond‐like carbon (HDLC) is a promising solid lubricant for its superlubricity which can benefit various industrial applications. While HDLC exhibits notable friction reduction in macroscale tests in inert or reducing environmental conditions, ultralow friction is rarely observed at the nanoscale. This study investigates this rather peculiar dependence of HDLC superlubricity on the contact scale. To attain superlubricity, HDLC requires i) removal of ≈2 nm‐thick air‐oxidized surface layer and ii) shear‐induced transformation of amorphous carbon to highly graphitic and hydrogenated structure. The nanoscale wear depth exceeds the typical thickness of the air‐oxidized layer, ruling out the possibility of incomplete removal of the air‐oxidized layer. Raman analysis of transfer films indicates that shear‐induced graphitization readily occurs at shear stresses lower than or comparable to those in the nanoscale test. Thus, the same is expected to occur at the nanoscale test. However, the graphitic transfer films are not detected in ex‐situ analyses after nanoscale friction tests, indicating that the graphitic transfer films are pushed out of the nanoscale contact area due to the instability of transfer films within a small contact area. Combining all these observations, this study concludes the retention of highly graphitic transfer films is crucial to achieving HDLC superlubricity.

Funder

National Science Foundation

Publisher

Wiley

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