To clarify the friction durability, both during and after the high-temperature heating of nanometer-thick diamond-like carbon (DLC) films, deposited using filtered cathodic vacuum arc (FCVA) and plasma chemical vapor deposition (P-CVD) methods, the dependence of the friction coefficient on the load and sliding cycles of the DLC films, were evaluated. Cluster-I consisted of a low friction area in which the DLC film was effective, while cluster-II consisted of a high friction area in which the lubricating effect of the DLC film was lost. The friction durability of the films was evaluated by statistical cluster analysis. Extremely thin FCVA-DLC films exhibited an excellent wear resistance at room temperature, but their friction durability was ...
In this study, we investigated the effects of various source gases (i. e., methane, ethane, ethylene...
Hard diamond-like carbon (DLC) films were deposited on silicon and high-speed steel substrates using...
The relationship between the tribological behavior and inherent features of the DLC coatings (i.e. s...
We studied the tribological properties of extremely thin DLC films at high temperature. The films we...
AbstractTribological durability properties of extremely thin diamond-like carbon (DLC) films (thickn...
Diamond-like carbon (DE) films are characterized by very low friction coefficients, high wear resist...
Hard diamond-like carbon (DLC) films were deposited on silicon substrates using a pulsed vacuum arc ...
In this study, we investigated the frictional behavior of both hydrogenated and hydrogen-free diamon...
In this study, the authors investigated the effects of various source gases (methane, ethane, ethyle...
In this study, we investigated the friction and wear performance of diamondlike carbon films (DLC) d...
International audienceDuring the past two decades, diamondlike carbon (DLC) films have attracted an ...
In this study, the authors introduce a new diamondlike carbon (DLC) film providing a friction coeffi...
Diamond like carbon (DLC) thin films, used as excellent solid lubricant, are grown on Si substrates ...
The high level of stress in hard diamond-like carbon (DLC) films limits their maximum thickness and ...
The pin-on-plate friction test was carried out to clarify the mechanism of low friction coefficient ...
In this study, we investigated the effects of various source gases (i. e., methane, ethane, ethylene...
Hard diamond-like carbon (DLC) films were deposited on silicon and high-speed steel substrates using...
The relationship between the tribological behavior and inherent features of the DLC coatings (i.e. s...
We studied the tribological properties of extremely thin DLC films at high temperature. The films we...
AbstractTribological durability properties of extremely thin diamond-like carbon (DLC) films (thickn...
Diamond-like carbon (DE) films are characterized by very low friction coefficients, high wear resist...
Hard diamond-like carbon (DLC) films were deposited on silicon substrates using a pulsed vacuum arc ...
In this study, we investigated the frictional behavior of both hydrogenated and hydrogen-free diamon...
In this study, the authors investigated the effects of various source gases (methane, ethane, ethyle...
In this study, we investigated the friction and wear performance of diamondlike carbon films (DLC) d...
International audienceDuring the past two decades, diamondlike carbon (DLC) films have attracted an ...
In this study, the authors introduce a new diamondlike carbon (DLC) film providing a friction coeffi...
Diamond like carbon (DLC) thin films, used as excellent solid lubricant, are grown on Si substrates ...
The high level of stress in hard diamond-like carbon (DLC) films limits their maximum thickness and ...
The pin-on-plate friction test was carried out to clarify the mechanism of low friction coefficient ...
In this study, we investigated the effects of various source gases (i. e., methane, ethane, ethylene...
Hard diamond-like carbon (DLC) films were deposited on silicon and high-speed steel substrates using...
The relationship between the tribological behavior and inherent features of the DLC coatings (i.e. s...