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反应性蒸汽中的呼吸图案:通往纳米孔阵列的新途径。

Breath Figure in Reactive Vapor: A New Route to Nanopore Array.

作者信息

Luo Tianchan, Bai Hua, Li Lei

机构信息

College of Materials, Xiamen University , Xiamen 361005, People's Republic of China.

出版信息

Langmuir. 2017 Jan 10;33(1):347-352. doi: 10.1021/acs.langmuir.6b03973. Epub 2016 Dec 30.

DOI:10.1021/acs.langmuir.6b03973
PMID:28000449
Abstract

A breath figure (BF)-inspired method for preparing ordered porous films has attracted more and more attention because of its simplicity, low cost, and easy implementation. However, it remains a challenge to use this method to fabricate nanoscale porous structures without designed polymer architecture and auxiliary. Herein, we first report a facile method to fabricate BF arrays with nanopores (nanoBFAs) in reactive vapor. Depending on the chemical reaction between the formic acid (FA) droplet template and the polyvinylpyridine (PVP) segments in copolymer, we successfully create nanoBFAs by casting a PVP-containing copolymer solution in CS in FA vapor. The condensed FA droplets can be instantly fixed by the PVP composition, and thus the growth and the aggregation of adjacent droplets are effectively restricted. Eventually, nanoBFAs are achieved in wide range solution concentration. In addition, binary porous structures with both nano- and microscale topology can be formed by using a FA/water mixed vapor with a one-step BF process. The produced nanoBFA films exhibit excellent antireflection performance with 0.5% reflectance, which is well-preserved even after hydrophobic treatment. This modified BF technique not only facilitates the elucidation of BFA formation mechanism but also opens a new way of fabricating nanoporous structures, which may have potential applications in electronic and optical devices.

摘要

一种受呼吸图案(BF)启发的制备有序多孔膜的方法因其简单、低成本和易于实施而受到越来越多的关注。然而,在没有设计聚合物结构和辅助的情况下,使用这种方法制造纳米级多孔结构仍然是一个挑战。在此,我们首次报道了一种在反应性蒸汽中制备具有纳米孔的BF阵列(纳米BFAs)的简便方法。根据甲酸(FA)液滴模板与共聚物中聚乙烯基吡啶(PVP)链段之间的化学反应,我们通过在FA蒸汽中于CS中浇铸含PVP的共聚物溶液成功制备了纳米BFAs。凝聚的FA液滴可被PVP成分立即固定,从而有效限制相邻液滴的生长和聚集。最终,在宽范围的溶液浓度下实现了纳米BFAs。此外,通过一步BF工艺使用FA/水混合蒸汽可形成具有纳米和微米级拓扑结构的二元多孔结构。所制备的纳米BFA膜具有0.5%的反射率,表现出优异的抗反射性能,即使经过疏水处理后也能很好地保持。这种改进的BF技术不仅有助于阐明BFA的形成机制,还开辟了一种制造纳米多孔结构的新途径,这可能在电子和光学器件中具有潜在应用。

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