Tribological Properties of WS2 Thin Films Containing Graphite-like Carbon and Ni Interlayers

被引:4
|
作者
Romanov, Roman I. [1 ]
Fominski, Dmitry V. [1 ]
Demin, Maxim V. [2 ]
Gritskevich, Mariya D. [1 ]
Doroshina, Natalia V. [3 ]
Volkov, Valentyn S. [3 ]
Fominski, Vyacheslav Yu. [1 ]
机构
[1] Natl Res Nucl Univ MEPhI, Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, Russia
[2] Immanuel Kant Balt Fed Univ, A Nevskogo St 14, Kaliningrad 236016, Russia
[3] Moscow Inst Phys & Technol MIPT, Ctr Photon & 2D Mat, Dolgoprudnyi 141701, Russia
基金
俄罗斯科学基金会;
关键词
ultralow friction; wear; nanolayered coatings; tribochemistry; WS2 thin films; graphitic-like thin films; pulsed laser deposition; DIAMOND-LIKE CARBON; PULSED-LASER DEPOSITION; WEAR BEHAVIOR; FRICTION PROPERTIES; RAMAN-SPECTROSCOPY; DISULFIDE FILMS; MULTILAYER FILM; COATINGS; SUPERLUBRICITY; MICROSTRUCTURE;
D O I
10.3390/ma16010282
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The development and production of thin-film coatings having very low friction is an urgent problem of materials science. One of the most promising solutions is the fabrication of special nanocomposites containing transition-metal dichalcogenides and various carbon-based nanophases. This study aims to explore the influence of graphite-like carbon (g-C) and Ni interface layers on the tribological properties of thin WS2 films. Nanocrystalline WS2 films were created by reactive pulsed laser deposition (PLD) in H2S at 500 degrees C. Between the two WS2 nanolayers, g-C and Ni nanofilms were fabricated by PLD at 700 and 22 degrees C, respectively. Tribotesting was carried out in a nitrogen-enriched atmosphere by the reciprocal sliding of a steel counterbody under a relatively low load of 1 N. For single-layer WS2 films, the friction coefficient was similar to 0.04. The application of g-C films did not noticeably improve the tribological properties of WS2-based films. However, the application of thin films of g-C and Ni reduced the friction coefficient to 0.013, thus, approaching superlubricity. The island morphology of the Ni nanofilm ensured WS2 retention and altered the contact area between the counterbody and the film surface. The catalytic properties of nickel facilitated the introduction of S and H atoms into g-C. The sliding of WS2 nanoplates against an amorphous g-C(S, H) nanolayer caused a lower coefficient of friction than the relative sliding of WS2 nanoplates. The detected behavior of the prepared thin films suggests a new strategy of designing antifriction coatings for practical applications and highlights the ample opportunities of laser techniques in the formation of promising thin-film coatings.
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页数:18
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