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首页> 外文期刊>Advances in colloid and interface science >Influence of chain ordering on frictional properties of self-assembled monolayers (SAMs) in nano-lubrication
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Influence of chain ordering on frictional properties of self-assembled monolayers (SAMs) in nano-lubrication

机译:链润滑对纳米润滑中自组装单分子膜(SAMs)摩擦性能的影响

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Adhesion of organic films to substrates is important in applications that involve solid surfaces in sliding contact. Although the thickness of self-assembled monolayers (SAMs) is only a few nanometers, they can drastically modify the frictional properties of the underlying substrate, and thus have great potential for serving as boundary lubricants on micro-and nano-scales. This review focuses on the relationship between the structural and compositional properties of SAMs and their frictional response. Adhesion of SAMs to the substrate surface usually occurs through chemisorption of the head groups on the constituent molecules, with molecular interactions such as van der Waals interactions playing important roles in organizing the molecules into surface films, and in controlling their tribological behavior. The durability and wear resistance of SAMs depend on the nature and strength of the binding forces between the head groups and the substrate surfaces, while the adhesion and friction forces are strongly influenced by the interactions of the terminal groups with the counterfaces. Results from both experimental measurements and molecular dynamics simulations consistently indicate that structural ordering of alkyl chains in SAMs reduces their frictional response, and that SAMs formed by molecules with alkyl chains longer than 8 to 10 methylene units are well organized, exhibiting low levels of friction. Less densely packed or more disordered monolayers inherently possess greater numbers of conformational defects at room temperature and present lower barriers to defect creation under the action of a contacting surface, and thus exhibit higher friction. Cross-linking of the spacer chains can reduce the frictional response of disordered films by increasing the chain ordering, but has little impact on SAMs that are already well ordered. On the other hand, introduction of sterically demanding terminal groups and dissimilar molecules reduces molecular ordering in SAMs and increases their frictional response. Significant growth in the application of SAMs to control the adhesion, friction, and wear of materials is expected with better understanding of the frictional properties of SAMs controlled by their structures and compositions and with technological progresses.
机译:在涉及固体表面滑动接触的应用中,有机膜对基材的粘附性很重要。尽管自组装单分子膜(SAMs)的厚度只有几纳米,但它们可以极大地改变下层基材的摩擦性能,因此在微米和纳米级用作边界润滑剂具有很大的潜力。这篇综述着重于SAM的结构和组成特性与其摩擦响应之间的关系。 SAMs与底物表面的粘附通常是通过头基团在组成分子上的化学吸附而发生的,分子相互作用(例如范德华相互作用)在将分子组织成表面膜并控制其摩擦学行为中起着重要作用。 SAM的耐用性和耐磨性取决于喷头组与基材表面之间结合力的性质和强度,而附着力和摩擦力则受末端基团与配合面之间相互作用的强烈影响。来自实验测量和分子动力学模拟的结果一致表明,SAM中烷基链的结构有序性降低了它们的摩擦响应,并且由烷基链长于8至10个亚甲基单元的分子形成的SAM组织良好,显示出较低的摩擦水平。在室温下,密度较小的包装或无序的单分子层固有地具有较多的构象缺陷,并且在接触表面的作用下,对缺陷形成的障碍较小,因此表现出较高的摩擦力。间隔链的交联可以通过增加链的有序性来降低无序薄膜的摩擦响应,但对已经有序的SAM几乎没有影响。另一方面,引入空间上需要的末端基团和异种分子会降低SAM中的分子有序性,并增加其摩擦响应。随着对SAMs的摩擦性能(由其结构和成分控制)和技术进步的更好理解,可以预期SAMs在控制材料的附着力,摩擦和磨损方面的应用将显着增长。

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