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Hierarchical nanoflake surface driven by spontaneous wrinkling of polyelectrolyte/metal complexed films

机译:聚电解质/金属复合膜自发起皱驱动的分层纳米片表面

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摘要

A mechanical or physical change observed in nanocomposite thin films has recently offered new opportunities to generate intriguing nanostructures. In this study, we present a novel means of creating a hierarchically developed nanoflake structure by exploiting surface wrinkles that occur during the incorporation process of metallic nanoparticles into layer-by-layer assembled polyelectrolyte multilayer (PEM) thin films. The PEM film composed with linear polyethylenimine (LPEI) and poly(acrylic acid) (PAA) allows for facilitated cationic exchange reaction within the film even after the electrostatic complexation and chemical cross-linking reaction. The subsequent reduction process induces an in situ complexation of metallic nanoparticles with a PEM matrix, causing an accumulation of lateral compressive stress for surface wrinkling. The wrinkling characteristics of the complexed films can be theoretically interpreted by employing the gradationally swollen film model, whereby a gradual change in the elastic property along the axial direction of the film can be appropriately reflected. In addition, wrinkled surfaces are further processed to form vertically aligned and hierarchically ordered nanoflakes after selective removal of the PEM matrix with plasma ashing. Consequently, superhydrophobic surface properties (water contact angle = 170°, sliding angle <1°) can be attained from the hierarchical nanoflake structure. The method presented here is advantageous in that large-scale preparation can be readily implemented by a stepwise dipping process without resorting to specific patterning or a serially applied complex structuring process, which can provide a promising platform technique for various surface engineering applications.
机译:在纳米复合薄膜中观察到的机械或物理变化最近为产生有趣的纳米结构提供了新的机会。在这项研究中,我们提出了一种新的手段,可以通过利用金属纳米粒子掺入逐层组装的聚电解质多层(PEM)薄膜的过程中产生的表面皱纹来创建分层开发的纳米薄片结构。由线性聚乙烯亚胺(LPEI)和聚丙烯酸(PAA)组成的PEM膜即使在静电络合和化学交联反应之后,也可以促进膜内的阳离子交换反应。随后的还原过程引起金属纳米颗粒与PEM基质的原位络合,从而导致表面压皱的横向压缩应力积累。通过采用逐渐溶胀的膜模型,可以从理论上解释复合膜的起皱特性,从而可以适当地反映沿膜的轴向的弹性的逐渐变化。另外,在用等离子体灰化选择性除去PEM基体之后,将起皱的表面进一步加工以形成垂直排列和分层有序的纳米薄片。因此,可以通过分层的纳米薄片结构获得超疏水的表面特性(水接触角= 170°,滑动角<1°)。这里提出的方法的优点在于,可以通过分步浸渍工艺容易地进行大规模制备,而无需诉诸特定的图案化或连续施加的复杂结构化工艺,这可以为各种表面工程应用提供有希望的平台技术。

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