Scanning probe microscopy of laser-graphitized diamond-like carbon films
- Authors: Frolov V.D.1, Zavedeev E.V.1, Komlenok M.S.1, Arutyunyan N.R.1, Shupegin M.L.2, Pimenov S.M.1
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Affiliations:
- Prokhorov General Physics Institute
- National Research University “Moscow Power Engineering Institute,”
- Issue: Vol 11, No 7-8 (2016)
- Pages: 461-467
- Section: Article
- URL: https://journal-vniispk.ru/2635-1676/article/view/219455
- DOI: https://doi.org/10.1134/S1995078016040078
- ID: 219455
Cite item
Abstract
A complex technique of scanning probe microscopy/spectroscopy (SPM/SPS) based on the microscopy of lateral forces and registration of a local electrical conductivity in combination with measurements of the microrelief has been developed for studies of laser-graphitized carbon microstructures. The method includes multiple direct and reverse probe scanning with the subsequent correction of the map position, their pixel-by-pixel subtraction and averaging, and a statistical processing of resulting data arrays concerning the distribution of lateral forces (friction forces). In addition, based on the measurements of currentvoltage (I–V) characteristics, a distribution of the electrical conductivity is built in the probe-sample circuit. Carbon structures based on hydrogenated diamond-like films of a-C:H type, which were deposited onto Si substrates, are used as the objects for studies. A local graphitization of the surface has been carried out by the irradiation of the films with an excimer KrF laser according to a preset microscopic pattern. Based on the resulting data, it is found that the reaction of the lateral forces (friction forces) in the laser-graphitized region is reversed to the temperature variations: when the temperature increases (from room to ∼120°C), the distribution of the friction forces shifts towards higher values and returns practically to the initial values when the temperature decreases to the initial level, which proves the influence of a water adsorbate on the friction properties of laser-graphitized regions on the film surface. It is also found that the laser-graphitized region is structurally inhomogeneous, which is proven by a decrease in the electrical conductivity from the center to the periphery.
About the authors
V. D. Frolov
Prokhorov General Physics Institute
Author for correspondence.
Email: frolov@ran.gpi.ru
Russian Federation, ul. Vavilova 38, Moscow, 119991
E. V. Zavedeev
Prokhorov General Physics Institute
Email: frolov@ran.gpi.ru
Russian Federation, ul. Vavilova 38, Moscow, 119991
M. S. Komlenok
Prokhorov General Physics Institute
Email: frolov@ran.gpi.ru
Russian Federation, ul. Vavilova 38, Moscow, 119991
N. R. Arutyunyan
Prokhorov General Physics Institute
Email: frolov@ran.gpi.ru
Russian Federation, ul. Vavilova 38, Moscow, 119991
M. L. Shupegin
National Research University “Moscow Power Engineering Institute,”
Email: frolov@ran.gpi.ru
Russian Federation, ul. Krasnokazarmennaya 14, Moscow, 111250
S. M. Pimenov
Prokhorov General Physics Institute
Email: frolov@ran.gpi.ru
Russian Federation, ul. Vavilova 38, Moscow, 119991
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