Formation of Interconnected Nanofiber Sheets by Chemical Vapor Polymerization at the Free Surface of Liquid Crystalline Films.

IF 16.9
Soumyamouli Pal, Arit Patra, John Kim, Sangchul Roh, Juriti Rajbangshi, Reid C Van Lehn, Joerg Lahann, Nicholas L Abbott
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Abstract

We report that chemical vapor polymerization (CVP) of aminomethyl[2.2]paracyclophane into nematic liquid crystal (LC) films (thicknesses of 18 µm) yields quasi-two-dimensional, sub-micron thick nanoporous polymer networks consisting of interconnected amine-functionalized nanofibers/nanowalls (widths of 30 ± 1 nm). We establish that the polymer networks form at the free surface of the LC films with thicknesses ranging from 79 ± 5 to 280 ± 14 nm and nanoscopic pores tunable via the choice of LC and monomer loading. Structural analysis using electron microscopy reveals the networks to possess morphologies ranging from open bicontinuous-like to cellular foam-like structures which, along with optical observations and molecular dynamics (MD) simulations, supports a synthesis pathway involving an interface-confined phase separation. MD simulations provide further insight into the atomic-scale processes determining the synthesis pathway, including the role of reactive precursor chemistry (e.g., hydroxymethyl[2.2]paracyclophane versus aminomethyl[2.2]paracyclophane versus [2.2]paracyclophane) in defining the nanostructure of the polymer product. Fluorescence and X-ray photoelectron spectroscopy confirm that the nanofiber sheets are decorated with primary amine groups, permitting covalent functionalization of the surfaces of the nanosheets. Finally, we show how the nanosheet synthesis can be integrated with existing membrane technology, illustrating the potential utility of the nanoporous sheets in a range of contexts, including filters, separators, and heat exchanger surfaces.

液晶膜自由表面化学气相聚合制备互联纳米纤维片。
我们报道了氨基甲基[2.2]副环环烷的化学气相聚合(CVP)成向列液晶(LC)膜(厚度为18 μ m),得到准二维,亚微米厚的纳米多孔聚合物网络,由相互连接的胺功能化纳米纤维/纳米壁(宽度为30±1 nm)组成。我们发现,聚合物网络在LC膜的自由表面形成,其厚度范围为79±5至280±14 nm,并且可以通过选择LC和单体负载来调节纳米级孔隙。使用电子显微镜进行的结构分析显示,这些网络具有从开放的双连续结构到细胞泡沫状结构的形态,以及光学观察和分子动力学(MD)模拟,支持涉及界面限制相分离的合成途径。MD模拟为确定合成途径的原子尺度过程提供了进一步的见解,包括反应性前体化学(例如,羟甲基[2.2]副环环烷对氨基甲基[2.2]副环环烷对[2.2]副环环烷)在确定聚合物产品纳米结构中的作用。荧光和x射线光电子能谱证实纳米纤维片被伯胺基团修饰,允许纳米片表面的共价官能化。最后,我们展示了纳米片的合成如何与现有的膜技术相结合,说明了纳米多孔片在过滤器、分离器和热交换器表面等一系列环境中的潜在用途。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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