Blattmann Christoph O, Pratsinis Sotiris E
Particle Technology Laboratory ETH Zürich, Sonneggstrasse 3, 8092 Zürich, Switzerland.
Materials (Basel). 2018 Jul 10;11(7):1177. doi: 10.3390/ma11071177.
Polymer nanocomposites are employed in (micro)electronic, biomedical, structural and optical applications. Their fabrication is challenging due to nanoparticle (filler) agglomeration and settling, increased viscosity of blended solutions and multiple tedious processing steps, just to name a few. Often this leads to an upper limit for filler content, requirements for filler⁻polymer interfacial chemistry and expensive manufacturing. As a result, novel but simple processes for nanocomposite manufacture that overcome such hurdles are needed. Here, a truly single-step procedure for synthesis of polymer nanocomposite films, structures and patterns at high loadings of nanoparticles (for example, >24 vol %) for a variety of compositions is presented. It is highly versatile with respect to rapid preparation of films possessing multiple layers and filler content gradients even on untreated challenging substrates (paper, glass, polymers). Such composites containing homogeneously dispersed nanoparticles even at high loadings can improve the mechanical strength of hydrogels, load-bearing ability of fragile microstructures, gas permeability in thin barriers, performance of dielectrics and device integration in stretchable electronics.
聚合物纳米复合材料被应用于(微)电子、生物医学、结构和光学领域。由于纳米颗粒(填料)的团聚和沉降、混合溶液粘度增加以及多个繁琐的加工步骤等诸多原因,其制造具有挑战性。这往往导致填料含量的上限、对填料 - 聚合物界面化学的要求以及昂贵的制造成本。因此,需要新颖且简单的纳米复合材料制造工艺来克服这些障碍。在此,本文介绍了一种真正的单步程序,用于在高负载纳米颗粒(例如,>24 体积%)的情况下合成各种组成的聚合物纳米复合薄膜、结构和图案。它具有高度的通用性,能够快速制备具有多层结构和填料含量梯度的薄膜,甚至可以在未经处理的具有挑战性的基材(纸张、玻璃、聚合物)上进行。即使在高负载下,这种含有均匀分散纳米颗粒的复合材料也可以提高水凝胶的机械强度、脆弱微结构的承载能力、薄屏障中的气体渗透性、电介质的性能以及可拉伸电子产品中的器件集成度。