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Nanomechanical and nanotribological properties of plasma nanotextured superhydrophilic and superhydrophobic polymeric surfaces

机译:等离子体纳米结构化的超亲水和超疏水聚合物表面的纳米力学和纳米摩擦学性质

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摘要

Oxygen plasma-induced surface modification of polymethylmethacrylate (PMMA), under plasma conditions favouring (maximizing) roughness formation, has been shown to create textured surfaces of roughness size and morphology dependent on the plasma-treatment time and subsequent morphology stabilization procedure. Superhydrophobic or superhydrophilic surfaces can thus be obtained, with potential applications in antireflective self-cleaning surfaces, microfluidics, wetting-dewetting control, anti-icing etc, necessitating determination of their mechanical properties. In this study, nanoindentation is used to determine the reduced modulus and hardness of the surface, while nanoscratch tests are performed to measure the coefficient of friction. The data are combined to assess the wear behaviour of such surfaces as a first guide for their practical applications. Short-time plasma treatment slightly changes mechanical, tribological and wear properties compared to untreated PMMA. However, a significant decrease in the reduced modulus and hardness and an increase in the coefficient of friction are observed after long plasma-treatment times. The C_4F_8 plasma deposited thin hydrophobic layer on the polymeric surfaces (untreated and treated) reveals good adhesion, while its mechanical properties are greatly influenced by the substrate; it is also found that it effectively protects the polymeric surfaces, reducing plastic deformation.
机译:氧等离子诱导的聚甲基丙烯酸甲酯(PMMA)的表面改性,在等离子条件下有利于(最大程度地)形成粗糙度,已显示出可以根据等离子处理时间和随后的形态稳定程序来创建粗糙度大小和形态的带纹理的表面。因此可以获得超疏水或超亲水的表面,其在抗反射自清洁表面,微流体,润湿-去湿控制,防结冰等方面的潜在应用,需要确定其机械性能。在这项研究中,纳米压痕用于确定降低的模量和表面硬度,而纳米划痕测试用于测量摩擦系数。结合数据以评估此类表面的磨损行为,作为其实际应用的第一指南。与未经处理的PMMA相比,短时等离子体处理会稍微改变机械,摩擦学和磨损性能。但是,经过长时间的等离子处理时间后,观察到模量和硬度降低显着降低,摩擦系数增大。在聚合物表面(未处理和已处理)上的C_4F_8等离子体沉积的疏水薄层显示出良好的附着力,而其机械性能受基材的影响很大。还发现它有效地保护了聚合物表面,减少了塑性变形。

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