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首页> 外文期刊>Tribology letters >In-Situ Formation of MoS2 and WS2 Tribofilms by the Synergy Between Transition Metal Oxide Nanoparticles and Sulphur-Containing Oil Additives
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In-Situ Formation of MoS2 and WS2 Tribofilms by the Synergy Between Transition Metal Oxide Nanoparticles and Sulphur-Containing Oil Additives

机译:通过过渡金属氧化物纳米粒子和含硫油添加剂之间的协同作用,原位形成MOS2和WS2呋喃酚

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This works investigates the in-situ formation of MoS2 and WS2 tribofilms by the synergy between transition metal oxide nanoparticles and conventional sulphur-containing anti-wear and extreme pressure additives. The formation of these low friction tribofilms can be obtained under reciprocating sliding contact and under extreme pressure conditions, as evidenced using X-ray photoelectron spectroscopy. Under reciprocating sliding conditions, the synergy between transition metal oxide nanoparticles and the ZDDP leads to coefficients of friction around 0.06 before they rise as consequence of oxidation. The synergy is more outstanding in extreme pressure conditions, particularly for MoO3 nanotubes combined with extreme pressure additive. This combination outperforms base oil mixtures containing EP additive or MoS2 nanotubes. While MoS2 nanotubes build superb extreme pressure tribofilms containing iron and molybdenum oxides and sulphides, MoO3 nanotubes are able to build similar tribofilms that can continuously re-sulphurize in the presence of the extreme pressure additive. Despite having a similar chemistry, MoO3 nanotubes are observed to sulphurize more easily when compared to WO3 nanoparticles. The work highlights the tribological potential of these nanoparticles otherwise typically used as precursors for the synthesis of transition metal dichalcogenide nanoparticles.
机译:这项工作通过转型金属氧化物纳米粒子和常规含硫抗磨和极压添加剂的协同作用来研究MOS2和WS2呋喃酚的原位形成。可以在往复滑动触点和极端压力条件下获得这些低摩擦呋喃虫的形成,如使用X射线光电子谱证明。在往复滑动条件下,过渡金属氧化物纳米颗粒和ZDDP之间的协同作用导致摩擦的系数约为0.06,在氧化后升高之前。协同作用在极压条件下更出色,特别是对于MOO3纳米管与极压添加剂相结合。这种组合优于含有EP添加剂或MOS2纳米管的基础油混合物。虽然MOS2纳米管构建含有铁和氧化钼和硫化物的精湛的极端压力呋喃酚,但MoO3纳米管能够构建类似的呋喃酚,可以在极压添加剂的存在下连续地重新硫化。尽管具有类似的化学性,与WO3纳米颗粒相比,观察到MOO3纳米管以更容易硫化。该工作突出了这些纳米颗粒的摩擦学潜力,否则通常用作合成过渡金属二硫代甲基纳米颗粒的前体。

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