ACS Nano. 2019 Mar 26;13(3):2773-2785. doi: 10.1021/acsnano.8b06767. Epub 2019 Jan 28.
Intensive studies on nacre-inspired composites with exceptional mechanical properties based on an organic/inorganic hierarchical layered structure have been conducted; however, integrating high strength, stiffness, and toughness for engineering materials still remains a challenge. We herein report the design and fabrication of polymer composites through a hydrogel-film casting method that allow for building uniformly layered organic/inorganic microstructure. Alginate (Alg) was used for an organic matrix, whose mechanical properties were controlled by Ca cross-linking toward the simultaneously strong, stiff, and tough resultant composite. Alumina (Alu) microplatelets were used for horizontally aligned inorganic phase, and their alignment and interactions with the organic matrix were improved by polyvinylpyrrolidone (PVP) coating on the platelet. The composite film exhibits well-balanced elastic and plastic deformation under tensile stress, leading to high stiffness and toughness, which have not been generally achieved in microplatelet-based composite films developed in previous studies. The synergistic effect of Ca cross-linking and PVP-coated Alu platelets on the mechanical properties improved polymer-platelet interfacial interactions, and platelet alignment is clearly demonstrated through mechanical tests and Fourier transform infrared and X-ray diffraction analyses. We further demonstrate that the reinforcing effect of the Alu platelet and PVP-coated platelet on the mechanical properties is dependent on humidity. Such effects are maximized at highly dry conditions, which is consistent with the model estimation. Furthermore, a thick bulk composite was produced by laminating thin films and showed high mechanical properties under flexural stress. Our design and fabrication strategies combined with the understanding of their mechanism yield an alternative approach to produce engineered composite materials.
基于有机/无机层状结构的具有优异机械性能的珍珠层启发型复合材料已经进行了深入研究;然而,为工程材料集成高强度、高刚性和高韧性仍然是一个挑战。我们在此通过水凝胶薄膜铸造方法设计和制造聚合物复合材料,该方法允许构建均匀分层的有机/无机微观结构。海藻酸钠(Alg)用作有机基质,其机械性能通过 Ca 交联来控制,以获得同时具有高强度、高刚性和高韧性的复合材料。氧化铝(Alu)微板用作水平取向的无机相,并且通过在板上涂覆聚乙烯吡咯烷酮(PVP)改善了其与有机基质的取向和相互作用。复合膜在拉伸应力下表现出良好的弹塑性变形,从而具有高刚性和韧性,这在以前的研究中开发的基于微板的复合材料膜中尚未普遍实现。Ca 交联和 PVP 涂覆的 Alu 板对机械性能的协同作用改善了聚合物-板的界面相互作用,并且通过机械测试、傅里叶变换红外和 X 射线衍射分析清楚地证明了板的取向。我们进一步证明了 Alu 板和 PVP 涂覆的板对机械性能的增强作用取决于湿度。在非常干燥的条件下,这种效果最大化,这与模型估计一致。此外,通过层压薄膜生产了厚的块状复合材料,并在弯曲应力下表现出高机械性能。我们的设计和制造策略结合对其机制的理解为制造工程复合材料提供了一种替代方法。