A Clue to Understand Environmental Influence on Friction and Wear of Diamond-Like Nanocomposite Thin Film
The wear and friction of diamond-like nanocomposite (DLN) film have been investigated in air with different relative humidity (RH), under deionized (DI) water and saline solution. The structure of the film has been characterized by Fourier transform infrared (FTIR), Raman spectroscopy, and scanning...
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doaj-f68b00da108044028089149e4ea8e9fe2020-11-24T23:07:23ZengHindawi LimitedAdvances in Tribology1687-59151687-59232013-01-01201310.1155/2013/352387352387A Clue to Understand Environmental Influence on Friction and Wear of Diamond-Like Nanocomposite Thin FilmSukhendu Jana0Sayan Das1Utpal Gangopadhyay2Anup Mondal3Prajit Ghosh4Meghnad Saha Institute of Technology, Techno India Group, Kolkata 700150, IndiaMeghnad Saha Institute of Technology, Techno India Group, Kolkata 700150, IndiaMeghnad Saha Institute of Technology, Techno India Group, Kolkata 700150, IndiaDepartment of Chemistry, Bengal Engineering and Science University, Howrah 711103, IndiaMeghnad Saha Institute of Technology, Techno India Group, Kolkata 700150, IndiaThe wear and friction of diamond-like nanocomposite (DLN) film have been investigated in air with different relative humidity (RH), under deionized (DI) water and saline solution. The structure of the film has been characterized by Fourier transform infrared (FTIR), Raman spectroscopy, and scanning electron microscope (SEM). The result shows two interpenetrating network structure: a–C:H and a–Si:O, and they are interpenetrated by Si–C bonding. The tribological performance has been measured using ball-on-disc tribometer with tungsten carbide ball as counterbody at 10 N normal load. Results show that with increasing relative humidity (RH) from 35% to 80%, the coefficient of friction (COF) increases gradually from 0.005 to 0.074, whereas with increasing RH the wear factor decreases from 9.8×10−8 mm3/Nm and attains a minimum value of 2.7×10−8 mm3/Nm at 50% RH. With further increase of RH the wear factor increases again. Moreover, in DI water and especially in saline solution, both the COF and wear factor have been found to be significantly low. A clue has been interpreted to understand environmental dependency, considering the effect of surface dangling bonds, charge transfer, and chemical interactions.http://dx.doi.org/10.1155/2013/352387 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Sukhendu Jana Sayan Das Utpal Gangopadhyay Anup Mondal Prajit Ghosh |
spellingShingle |
Sukhendu Jana Sayan Das Utpal Gangopadhyay Anup Mondal Prajit Ghosh A Clue to Understand Environmental Influence on Friction and Wear of Diamond-Like Nanocomposite Thin Film Advances in Tribology |
author_facet |
Sukhendu Jana Sayan Das Utpal Gangopadhyay Anup Mondal Prajit Ghosh |
author_sort |
Sukhendu Jana |
title |
A Clue to Understand Environmental Influence on Friction and Wear of Diamond-Like Nanocomposite Thin Film |
title_short |
A Clue to Understand Environmental Influence on Friction and Wear of Diamond-Like Nanocomposite Thin Film |
title_full |
A Clue to Understand Environmental Influence on Friction and Wear of Diamond-Like Nanocomposite Thin Film |
title_fullStr |
A Clue to Understand Environmental Influence on Friction and Wear of Diamond-Like Nanocomposite Thin Film |
title_full_unstemmed |
A Clue to Understand Environmental Influence on Friction and Wear of Diamond-Like Nanocomposite Thin Film |
title_sort |
clue to understand environmental influence on friction and wear of diamond-like nanocomposite thin film |
publisher |
Hindawi Limited |
series |
Advances in Tribology |
issn |
1687-5915 1687-5923 |
publishDate |
2013-01-01 |
description |
The wear and friction of diamond-like nanocomposite (DLN) film have been investigated in air with different relative humidity (RH), under deionized (DI) water and saline solution. The structure of the film has been characterized by Fourier transform infrared (FTIR), Raman spectroscopy, and scanning electron microscope (SEM). The result shows two interpenetrating network structure: a–C:H and a–Si:O, and they are interpenetrated by Si–C bonding. The tribological performance has been measured using ball-on-disc tribometer with tungsten carbide ball as counterbody at 10 N normal load. Results show that with increasing relative humidity (RH) from 35% to 80%, the coefficient of friction (COF) increases gradually from 0.005 to 0.074, whereas with increasing RH the wear factor decreases from 9.8×10−8 mm3/Nm and attains a minimum value of 2.7×10−8 mm3/Nm at 50% RH. With further increase of RH the wear factor increases again. Moreover, in DI water and especially in saline solution, both the COF and wear factor have been found to be significantly low. A clue has been interpreted to understand environmental dependency, considering the effect of surface dangling bonds, charge transfer, and chemical interactions. |
url |
http://dx.doi.org/10.1155/2013/352387 |
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