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Covalently grafting of self-assembled functionalized graphene oxide multilayer films on Si substrate for solid film lubrication

机译:自组装的功能化氧化石墨烯多层膜在Si衬底上的共价接枝用于固体膜润滑

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摘要

Graphene-based polymer brush containing multilayer film has been fabricated on silicon wafer (SW) via self-assembled multistep approach based on covalent insertion of 3-aminopropyltrimethoxysilane as a chemical linker on graphene oxide (GO) followed by covalently anchored with polyethyleneimine (PEI). A multilayer polymer brush film was then constructed by electrostatic layer-by-layer (LBL) self-assembly technique between positively charged outer layer PEI grafted GO and anionic polyelectrolyte, poly (sodium 4-styrenesulfonate) (PSS). The LBL formation and microstructure of as prepared films were characterized by Raman spectroscopy, atomic force microscopy, field emission scanning electron microscopy and elemental electron dispersive spectroscopy analysis. The changes in wettability of films during grafting of chemical components on silicon substrate were determined by water contact angle measurement. Microtribological performances of the films were investigated using ball-on-disc contact geometry in ambient condition. The influence of contact pressure and sliding velocity were also studied under reciprocating tribo contact to evaluate the load bearing ability of the films. The multilayer films exhibited low (similar to 0.15-0.17) and steady coefficient of friction (COF) at 1 N load (contact pressure similar to 0.54 GPa) compared to bare SW (similar to 0.6) with remarkable wear-resistivity. With increasing contact pressure (4 N, similar to 0.86 GPa), the multilayer films provided minimal COF and low wear depth with improved sliding durability among the films. The improved friction and wear resistivity of the multi-layer films are attributed to densely packed polymeric graphene lamella contributing low-resistance to shear during sliding and the presence of sulphur on PSS might assists in superior adhesion of delaminated film to steel counterface ball during shearing, which was investigated by microscopic and Raman spectral analysis.
机译:包含石墨烯基聚合物刷的多层膜已通过自组装多步骤方法在硅晶片(SW)上制造,该方法基于将3-氨基丙基三甲氧基硅烷作为化学连接剂共价插入氧化石墨烯(GO)上,然后与聚乙烯亚胺(PEI)共价锚固。然后通过带正电的外层PEI接枝的GO和阴离子聚电解质聚(4-苯乙烯磺酸钠)(PSS)之间的静电逐层(LBL)自组装技术构建多层聚合物刷膜。通过拉曼光谱,原子力显微镜,场发射扫描电子显微镜和元素电子色散光谱分析对所制备膜的LBL形成和微观结构进行表征。通过水接触角测量来确定化学成分在硅衬底上接枝过程中薄膜的润湿性变化。在环境条件下使用圆盘接触几何结构研究了薄膜的微摩擦学性能。在往复摩擦接触下,还研究了接触压力和滑动速度的影响,以评价薄膜的承载能力。与裸露的SW(约0.6)相比,多层膜在1N负载(接触压力约0.54 GPa)下表现出低(约0.15-0.17)和稳定的摩擦系数(COF),且具有明显的耐磨性。随着接触压力的增加(4 N,类似于0.86 GPa),多层薄膜提供了最小的COF和低磨损深度,并提高了薄膜之间的滑动耐久性。多层膜改善的摩擦和耐磨性归因于致密堆积的聚合物石墨烯薄片,在滑动过程中对剪切产生低阻力,并且PSS上存在的硫可能有助于在剪切过程中分层膜与钢对接面球的优异粘合,通过显微镜和拉曼光谱分析对其进行了研究。

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