Cilento Fabrizia, Martone Alfonso, Giordano Michele
Department of Chemical, Materials and Production Engineering, University of Naples Federico II, 80125 Naples, Italy.
Institute of Polymers, Composite and Biomaterials (IPCB), National Research Council of Italy, 80055 Portici, Italy.
Nanomaterials (Basel). 2022 Apr 15;12(8):1359. doi: 10.3390/nano12081359.
Achieving high mechanical performances in nanocomposites reinforced with lamellar fillers has been a great challenge in the last decade. Many efforts have been made to fabricate synthetic materials whose properties resemble those of the reinforcement. To achieve this, special architectures have been considered mimicking existing materials, such as nacre. However, achieving the desired performances is challenging since the mechanical response of the material is influenced by many factors, such as the filler content, the matrix molecular mobility and the compatibility between the two phases. Most importantly, the properties of a macroscopic bulk material strongly depend on the interaction at atomic levels and on their synergetic effect. In particular, the formation of highly-ordered brick-and-mortar structures depends on the interaction forces between the two phases. Consequently, poor mechanical performances of the material are associated with interface issues and low stress transfer from the matrix to the nanoparticles. Therefore, improvement of the interface at the chemical level enhances the mechanical response of the material. The purpose of this review is to give insight into the stress transfer mechanism in high filler content composites reinforced with 2D carbon nanoparticles and to describe the parameters that influence the efficiency of stress transfer and the strategies to improve it.
在过去十年中,在由层状填料增强的纳米复合材料中实现高机械性能一直是一项巨大挑战。人们已经做出了许多努力来制造性能类似于增强材料的合成材料。为了实现这一目标,人们考虑了模仿现有材料(如珍珠母)的特殊结构。然而,实现所需性能具有挑战性,因为材料的机械响应受许多因素影响,如填料含量、基体分子流动性以及两相之间的相容性。最重要的是,宏观块状材料的性能强烈依赖于原子水平的相互作用及其协同效应。特别是,高度有序的砖-砂浆结构的形成取决于两相之间的相互作用力。因此,材料的机械性能差与界面问题以及从基体到纳米颗粒的低应力传递有关。因此,在化学层面改善界面可增强材料的机械响应。本综述的目的是深入了解二维碳纳米颗粒增强的高填料含量复合材料中的应力传递机制,并描述影响应力传递效率的参数以及改善应力传递的策略。