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Ordered arrays of polymeric nanopores by using inverse nanostructured PTFE surfaces

机译:通过使用反向纳米结构的PTFE表面来排列聚合物纳米孔的有序阵列

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摘要

We present a simple, efficient, and high-throughput methodology for the fabrication of ordered nanoporous polymeric surfaces with areas in the range of cm ~2. The procedure is based on a two-stage replication of a master nanostructured pattern. The process starts with the preparation of an ordered array of poly(tetrafluoroethylene) (PTFE) free-standing nanopillars by wetting self-ordered porous anodic aluminum oxide templates with molten PTFE. The nanopillars are 120nm in diameter and approximately 350nm long, while the array extends over cm ~2. The PTFE nanostructuring process induces surface hydrocarbonation of the nanopillars, as revealed by confocal Raman microscopy/spectroscopy, which enhances the wettability of the originally hydrophobic material and facilitates its subsequent use as an inverse pattern. Thus, the PTFE nanostructure is then used as a negative master for the fabrication of macroscopic hexagonal arrays of nanopores composed of biocompatible poly(vinylalcohol). In this particular case, the nanopores are 130-140nm in diameter and the interpore distance is around 430nm. Features of such characteristic dimensions are known to be easily recognized by living cells. Moreover, the inverse mold is not destroyed in the pore array demolding process and can be reused for further pore array fabrication. Therefore, the developed method allows the high-throughput production of cm ~2-scale biocompatible nanoporous surfaces that could be interesting as two-dimensional scaffolds for tissue repair or wound healing. Moreover, our approach can be extrapolated to the fabrication of almost any polymer and biopolymer ordered pore array.
机译:我们提出了一种简单,高效,高通量的方法,用于制造面积在cm〜2范围内的有序纳米多孔聚合物表面。该程序基于主纳米结构图案的两阶段复制。该过程开始于通过用熔融的PTFE润湿自排序的多孔阳极氧化铝模板来准备有序排列的聚四氟乙烯(PTFE)独立式纳米柱。纳米柱的直径为120nm,长约为350nm,而阵列的长度超过cm〜2。共聚焦拉曼显微镜/光谱显示,PTFE纳米结构化工艺可诱导纳米柱的表面碳氢化合物化,从而增强了最初疏水性材料的润湿性,并有利于其随后用作反型。因此,PTFE纳米结构随后用作负片母盘,用于制造由生物相容性聚乙烯醇组成的纳米孔的宏观六角形阵列。在此特定情况下,纳米孔的直径为130-140nm,孔间距离约为430nm。已知这种特征尺寸的特征容易被活细胞识别。而且,倒模在孔阵列脱模过程中不会被破坏,并且可以重复用于进一步的孔阵列制造。因此,所开发的方法允许高通量产生cm 2规模的生物相容性纳米多孔表面,作为组织修复或伤口愈合的二维支架,这可能是令人感兴趣的。而且,我们的方法可以推广到几乎任何聚合物和生物聚合物有序孔阵列的制造。

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