Synthesis of N-doped carbon quantum dots as lubricant additive to enhance the tribological behavior of MoS2 nanofluid

材料科学 润滑油 润滑 纳米流体 纳米颗粒 摩擦学 石墨烯 摩擦学 化学工程 无定形固体 复合材料 碳纤维 量子点 分散稳定性 兴奋剂 纳米技术 复合数 有机化学 化学 工程类 光电子学
作者
Jiaqi He,Jianlin Sun,Junho Choi,Chenglong Wang,Daoxin Su
出处
期刊:Friction [Springer Nature]
卷期号:11 (3): 441-459 被引量:71
标识
DOI:10.1007/s40544-022-0619-4
摘要

Abstract In this study, a novel lubricant additive nitrogen-doped carbon quantum dot (N-CQD) nanoparticle was prepared by the solvothermal method. The synthesized spherical N-CQD nanoparticles in the diameter of about 10 nm had a graphene oxide (GO)-like structure with various oxygen (O)- and nitrogen (N)-containing functional groups. Then N-CQDs were added to MoS 2 nanofluid, and the tribological properties for steel/steel friction pairs were evaluated using a pin-on-disk tribometer. Non-equilibrium molecular dynamics (NEMD) simulations for the friction system with MoS 2 or MoS2 + N-CQD nanoparticles were also conducted. The results showed that friction processes with MoS 2 + N-CQD nanofluids were under the mixed lubrication regime. And MoS 2 nanofluid containing 0.4 wt% N-CQDs could achieve 30.4% and 31.0% reduction in the friction coefficient and wear rate, respectively, compared to those without N-CQDs. By analyzing the worn surface topography and chemical compositions, the excellent lubrication performance resulted from the formation of tribochemistry-induced tribofilm. The average thickness of tribofilm was about 13.9 nm, and it was composed of amorphous substances, ultrafine crystalline nanoparticles, and self-lubricating FeSO 4 /Fe 2 (SO 4 ) 3 . NEMD simulation results indicated the interaction between S atoms in MoS 2 as well as these O- and N-containing functional groups in N-CQDs with steel surfaces enhanced the stability and strength of tribofilm. Thereby the metal surface was further protected from friction and wear.
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