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冷拉伸导致表面粗糙,形成高密度、高纵横比的毛发状凸起。

Hairy surfaces by cold drawing leading to dense lawns of high aspect ratio hairs.

机构信息

Department of Microsystems Engineering-IMTEK, University of Freiburg, Georges-Köhler-Allee 103, 79110, Freiburg, Germany.

BASF SE, Advanced Materials and Systems Research, Carl-Bosch-Strasse 38, 67056, Ludwigshafen, Germany.

出版信息

Sci Rep. 2022 Jun 15;12(1):9952. doi: 10.1038/s41598-022-13419-3.

Abstract

The surfaces of many organisms are covered with hairs, which are essential for their survival in a complex environment. The generation of artificial hairy surfaces from polymer materials has proven to be challenging as it requires the generation of structures with very high aspect ratios (AR). We report on a technique for the fabrication of surfaces covered with dense layers of very high AR nanoscale polymer hairs. To this, templates having pores with diameters of several hundred nanometers are filled with a polymer melt by capillary action. The polymer is then allowed to cool and the template is mechanically removed. Depending on the conditions employed, the formed structures can be a simple replica of the pore, or the polymer is deformed very strongly by cold drawing to yield in long hairs, with hair densities significantly up to 6,6 × 10 hairs/cm at AR of much higher than 200. The mechanism of hair formation is attributed to a delicate balance between the adhesion forces of the polymer in the pore and the yield force acting on it during mechanically demolding. We demonstrate how with very little effort and within a timescale of seconds unique topographies can be obtained, which can dramatically tailor the wetting properties of common polymers.

摘要

许多生物体的表面都覆盖着毛发,这些毛发对于它们在复杂环境中的生存至关重要。然而,从聚合物材料生成具有高纵横比(AR)的人工毛发表面是具有挑战性的。我们报告了一种在表面上制造密集的高 AR 纳米级聚合物毛发层的技术。为此,通过毛细作用将直径为数百纳米的孔的模板填充有聚合物熔体。然后允许聚合物冷却,并且通过机械移除模板。根据所采用的条件,形成的结构可以是孔的简单复制品,或者聚合物通过冷拉伸强烈变形以产生长毛发,其中毛发密度高达 6.6×10 根/厘米,纵横比远高于 200。毛发形成的机制归因于聚合物在孔中的粘附力与在机械脱模过程中作用于其上的屈服力之间的微妙平衡。我们证明了,只需很少的努力和几秒钟的时间内,就可以获得独特的形貌,从而可以显著改变常见聚合物的润湿性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c1fc/9200784/a1d68d67f39c/41598_2022_13419_Fig1_HTML.jpg

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