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One-step control of hierarchy and functionality of polymeric surfaces in a new plasma nanotechnology reactor

机译:新等离子体纳米技术反应器中聚合物表面层次和功能的一步控制

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摘要

Hierarchical micro-nanostructured surfaces are key components of 'smart' multifunctional materials, used to control wetting, adhesion, tactile, friction, optical, antifogging, antibacterial, and many more surface properties. Hierarchical surfaces comprise random or ordered structures ranked by their length scale spanning the range from a few nanometers to a few micrometers, with the larger microstructures typically embedding smaller nanostructures. Despite the importance of hierarchical surfaces, there have been few studies on their precise and controlled fabrication or their quantitative characterization, and they usually involve multiple and complex fabrication steps. Here, we present a new plasma nanotechnology, which we term 'nanoinhibit', and a new plasma reactor for producing in one facile process-step-controlled hierarchy at will on polymeric surfaces. We couple the new plasma nanotechnology with detailed computational nanometrology based on the analysis of scanning electron microscopy images and targeted to specific functionality. We showcase the potential of 'nanoinhibit' for functional surface fabrication by controlling the wetting and optical functionality of the fabricated hierarchical surfaces and showing its dependence on surface morphology metrics. Finally, we observe that 'nanoinhibit' produces a new class of 'strong hierarchical' surfaces exhibiting spatially separated periodic and fractal-like components.
机译:分层微纳结构表面是“智能”多功能材料的关键组成部分,用于控制润湿性、附着力、触觉、摩擦、光学、防雾、抗菌和更多表面特性。分层表面由随机或有序结构组成,其长度范围从几纳米到几微米不等,较大的微结构通常嵌入较小的纳米结构。尽管分层表面很重要,但很少有人对其精确、可控的制造或定量表征进行研究,而且它们通常涉及多个复杂的制造步骤。在这里,我们介绍了一种新的等离子体纳米技术,我们称之为“纳米抑制”,以及一种新的等离子体反应器,用于在聚合物表面上以一种简单的工艺步骤随意产生受控的层次结构。我们将新的等离子体纳米技术与基于扫描电子显微镜图像分析并针对特定功能的详细计算纳米计量学结合起来。我们通过控制制造的分层表面的润湿性和光学功能性,展示了“纳米抑制”在功能性表面制造中的潜力,并展示了其对表面形态指标的依赖性。最后,我们观察到“纳米抑制”产生了一类新的“强分层”表面,显示出空间上分离的周期性和分形成分。

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