4.6 Article

Temperature and velocity dependent friction of a microscale graphite-DLC heterostructure

Journal

FRICTION
Volume 8, Issue 2, Pages 462-470

Publisher

SPRINGER
DOI: 10.1007/s40544-019-0288-0

Keywords

friction; graphite; diamond like carbon; irradiation; desorption

Funding

  1. Thousand Young Talents Program
  2. NSFC [11632009, 11772168, 11890673, 11890671]
  3. fellowship program for outstanding postdoctoral researchers from China and India in Israeli Universities

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One of the promising approaches to achieving large scale superlubricity is the use of junctions between existing ultra-flat surface together with superlubric graphite mesas. Here we studied the frictional properties of microscale graphite mesa sliding on the diamond-like carbon, a commercially available material with a ultra-flat surface. The interface is composed of a single crystalline graphene and a diamond-like carbon surface with roughness less than 1 nm. Using an integrated approach, which includes Argon plasma irradiation of diamond-like carbon surfaces, X-ray photoelectron spectroscopy analysis and Langmuir adsorption modeling, we found that while the velocity dependence of friction follows a thermally activated sliding mechanism, its temperature dependence is due to the desorption of chemical groups upon heating. These observations indicate that the edges have a significant contribution to the friction. Our results highlight potential factors affecting this type of emerging friction junctions and provide a novel approach for tuning their friction properties through ion irradiation.

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