Fullerene-like hydrogenated carbon films with super-low friction and wear, and low sensitivity to environment

2009 ◽  
Vol 43 (1) ◽  
pp. 015404 ◽  
Author(s):  
Li Ji ◽  
Hongxuan Li ◽  
Fei Zhao ◽  
Weilong Quan ◽  
Jianmin Chen ◽  
...  
2017 ◽  
Vol 638 ◽  
pp. 375-382 ◽  
Author(s):  
Teng Chen ◽  
Xingyang Wu ◽  
Zhou Ge ◽  
Jingjie Ruan ◽  
Bo Lv ◽  
...  

Wear ◽  
2005 ◽  
Vol 259 (1-6) ◽  
pp. 765-770 ◽  
Author(s):  
J.J. Rha ◽  
S.C. Kwon ◽  
J.R. Cho ◽  
S. Yim ◽  
N. Saka

Materials ◽  
2019 ◽  
Vol 12 (9) ◽  
pp. 1550 ◽  
Author(s):  
Yunhai Liu ◽  
Lei Chen ◽  
Bin Zhang ◽  
Zhongyue Cao ◽  
Pengfei Shi ◽  
...  

The friction of hydrogenated diamond-like carbon (H-DLC) films was evaluated under the controlled environments of humid air and vacuum by varying the applied load. In humid air, there is a threshold applied load below which no obvious friction drop occurs and above which the friction decreases to a relatively low level following the running-in process. By contrast, superlubricity can be realized at low applied loads but easily fails at high applied loads under vacuum conditions. Further analysis indicates that the graphitization of the sliding H-DLC surface has a negligible contribution to the sharp drop of friction during the running-in process under both humid air and vacuum conditions. The low friction in humid air and the superlow friction in vacuum are mainly attributed to the formation and stability of the transfer layer on the counterface, which depend on the load and surrounding environment. These results can help us understand the low-friction mechanism of H-DLC film and define optimized working conditions in practical applications, in which the transfer layer can be maintained for a long time under low applied load conditions in vacuum, whereas a high load can benefit the formation of the transfer layer in humid air.


2015 ◽  
Vol 143 ◽  
pp. 188-190 ◽  
Author(s):  
Yongfu Wang ◽  
Junmeng Guo ◽  
Jun Zhao ◽  
Delei Ding ◽  
Yongyong He ◽  
...  

Friction ◽  
2021 ◽  
Author(s):  
Zonglin Pan ◽  
Qinzhao Zhou ◽  
Pengfei Wang ◽  
Dongfeng Diao

AbstractReducing the friction force between the commercial archwire and bracket during the orthodontic treatment in general dental practice has attracted worldwide interest. An investigation on the friction and wear behaviors of the uncoated and carbon film coated stainless steel archwires running against stainless steel brackets was systematically conducted. The carbon films were prepared at substrate bias voltages from +5 to +50 V using an electron cyclotron resonance plasma sputtering system. With increasing substrate bias voltage, local microstructures of the carbon films evolved from amorphous carbon to graphene nanocrystallites. Both static and stable friction coefficients of the archwire-bracket contacts sliding in dry and wet (artificial saliva) conditions decreased with the deposition of carbon films on the archwires. Low friction coefficient of 0.12 was achieved in artificial saliva environment for the graphene sheets embedded carbon (GSEC) film coated archwire. Deterioration of the friction behavior of the GSEC film coated archwire occurred after immersion of the archwire in artificial saliva solution for different periods before friction test. However, moderate friction coefficient of less than 0.30 sustained after 30 days immersion periods. The low friction mechanism is clarified to be the formation of salivary adsorbed layer and graphene sheets containing tribofilm on the contact interfaces. The robust low friction and low wear performances of the GSEC film coated archwires make them good candidates for clinical orthodontic treatment applications.


Nanoscale ◽  
2017 ◽  
Vol 9 (39) ◽  
pp. 14937-14951 ◽  
Author(s):  
Reuben J. Yeo ◽  
Neeraj Dwivedi ◽  
Lu Zhang ◽  
Zheng Zhang ◽  
Christina Y. H. Lim ◽  
...  

A sub-10 nm hybrid SiNx/C film demonstrated remarkable wear durability under aggressive wear due to an enhanced interfacial chemistry and carbon microstructure.


Carbon ◽  
2018 ◽  
Vol 137 ◽  
pp. 49-56 ◽  
Author(s):  
Yongfu Wang ◽  
Kaixiong Gao ◽  
Bin Zhang ◽  
Qi Wang ◽  
Junyan Zhang

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