首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Understanding Adsorption Behaviors of Organic Friction Modifiers on Hydroxylated SiO2 (001) Surfaces: Effects of Molecular Polarity and Temperature
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Understanding Adsorption Behaviors of Organic Friction Modifiers on Hydroxylated SiO2 (001) Surfaces: Effects of Molecular Polarity and Temperature

机译:了解羟基化SiO2(001)表面上有机摩擦改性剂的吸附行为:分子极性和温度的影响

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摘要

Molecular dynamics simulations are used to investigate the physisorption of organic friction modifiers (OFMs) lubricated by 1-decene trimer (PAO4) representing a base oil and confined between hydroxylated SiO2 (001) surfaces. The results indicate that OFM molecules form dense, tendentiously vertical monolayer films at low temperature but loose adsorption layers at high temperature, particularly for R-NH2 with weaker molecular polarity. The structural information is quantitatively clarified by mass density profiles, radial distribution function, and probability distributions of an end-to-end distance at a perpendicular-to-surface direction. The movement performance of lubricant, reflected by the thickness of the organic part and radius of gyration of PAO4 molecules, strongly depends on temperature. The adsorption amount of OFM molecules decreases dramatically with lowering OFM polarity and increasing temperature above the critical desorption temperatures of about 320, 373, and 453 K for amine (R-NH2), alcohol (R-OH), and acid (R-COOH), respectively. The interaction energies of the OFM-surface decrease continuously for the R-NH2 system with temperature and decrease rapidly as temperature exceeds a critical value for both R-OH and R-COOH systems. The single-molecule geometry optimization validates the significant role of the electrostatic and hydrogen-bond attractions in molecular adsorption. Therefore, the OFMs with stronger polarity (like R-COOH) present stronger adsorption and better temperature resistance. The findings in this work are of particular value and provide a guideline in designing and engineering novel OFM additives for extreme lubrication conditions.
机译:分子动力学模拟用于研究润滑的1-癸烯三聚体(PAO4)的有机摩擦改性剂(OFMS)的理由,其代表基础油,并限制在羟基化的SiO 2(001)表面之间。结果表明,OFM分子在低温下形成致密,垂直的单层膜,但在高温下吸附层,特别是对于较弱的分子极性的R-NH2。通过质量密度分布,径向分布函数和端到端距离处的端到端距离的概率分布定量澄清结构信息。由PaO4分子的有机部件厚度和PaO4分子的循环反射反射的润滑剂的运动性能强烈取决于温度。 OFM分子的吸附量随着氧化胺(R-NH2),醇(R-OH)和酸(R-COOH)的临界解吸温度的降低,高于临界解吸温度的临界解吸温度。 ), 分别。由于温度超过R-OH和R-COOH系统的临界值,OFM表面的相互作用能量连续降低R-NH2系统,并且随着R-OH和R-COOH系统的临界值,迅速降低。单分子几何优化验证了静电和氢键景点在分子吸附中的重要作用。因此,极性强(如R-COOH)具有更强的吸附和更好的耐温性。这项工作中的调查结果特别有价值,并提供了用于极端润滑条件的设计和工程新型的指导性。

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    Northwestern Polytech Univ Ctr Adv Lubricat &

    Seal Mat State Key Lab Solidificat Proc Xian 710072 Peoples R China;

    Northwestern Polytech Univ Ctr Adv Lubricat &

    Seal Mat State Key Lab Solidificat Proc Xian 710072 Peoples R China;

    Xi An Jiao Tong Univ State Key Lab Mech Behav Mat Xian 710049 Peoples R China;

    Northwestern Polytech Univ Ctr Adv Lubricat &

    Seal Mat State Key Lab Solidificat Proc Xian 710072 Peoples R China;

    Northwestern Polytech Univ Ctr Adv Lubricat &

    Seal Mat State Key Lab Solidificat Proc Xian 710072 Peoples R China;

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  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;化学;
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