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利用原位原子力显微镜技术从液态分散纳米颗粒中生成稳健固态薄膜的纳米尺度方法:生长动力学和纳米力学性能。

Nanoscale Generation of Robust Solid Films from Liquid-Dispersed Nanoparticles via in Situ Atomic Force Microscopy: Growth Kinetics and Nanomechanical Properties.

机构信息

Department of Mechanical Engineering & Applied Mechanics , University of Pennsylvania , Philadelphia , Pennsylvania 19104 , United States.

Department of Mechanical Engineering , Villanova University , Villanova , Pennsylvania 19085 , United States.

出版信息

ACS Appl Mater Interfaces. 2018 Nov 21;10(46):40335-40347. doi: 10.1021/acsami.8b16680. Epub 2018 Nov 9.

DOI:10.1021/acsami.8b16680
PMID:30335945
Abstract

Inorganic metal-oxide nanoparticles have been identified as candidate materials for replacing zinc dialkyldithiophosphate (ZDDP) antiwear additives in automotive lubricants due to their ability to form protective antiwear tribofilms. However, the nanoscale mechanisms that control the growth and properties of these tribofilms remain unknown. Here, we present the results of an in situ study of the kinetics of nanoparticle tribofilm growth using colloidal-probe atomic force microscopy (AFM). We report on the nucleation and growth of antiwear tribofilms formed with a dispersion of a novel zirconia (ZrO) nanoparticle additive in low-viscosity oil. Tribofilms in this study are generated in situ at the lubricated nanoscale contact of the colloidal-probe AFM, which helps elucidate the effects of localized contact parameters on tribofilm nucleation and growth. The results strongly support that ZrO nanoparticle tribofilms grow through a process of stress-activated tribosintering, after removal of organic ligands that attached to the nanoparticles. In contrast to ZDDP-derived tribofilms, ZrO tribofilm growth occurs across temperatures from -25 to 100 °C. Nanomechanical properties of the resulting tribofilms are found to approach values for single-crystal and conventionally sintered macroscale structures, suggesting the potential for robust wear protection across a broader range of conditions than those where ZDDP is effective.

摘要

无机金属氧化物纳米颗粒已被确定为在汽车润滑剂中替代锌二烷基二硫代磷酸酯 (ZDDP) 抗磨添加剂的候选材料,因为它们能够形成保护性的抗磨摩擦膜。然而,控制这些摩擦膜生长和性能的纳米尺度机制仍不清楚。在这里,我们使用胶体探针原子力显微镜 (AFM) 对纳米颗粒摩擦膜生长的动力学进行了原位研究。我们报告了在低粘度油中分散新型氧化锆 (ZrO) 纳米颗粒添加剂形成的抗磨摩擦膜的成核和生长情况。本研究中的摩擦膜是在胶体探针 AFM 的润滑纳米级接触原位生成的,这有助于阐明局部接触参数对摩擦膜成核和生长的影响。结果强烈支持 ZrO 纳米颗粒摩擦膜通过在去除附着在纳米颗粒上的有机配体后,通过应力激活的摩擦烧结过程生长。与 ZDDP 衍生的摩擦膜不同,ZrO 摩擦膜的生长温度范围从-25 到 100°C。所得摩擦膜的纳米力学性能接近单晶和常规烧结宏观结构的值,这表明其具有在比 ZDDP 有效范围更广的条件下提供稳健磨损保护的潜力。

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