Sanchez-Hidalgo Ruben, Blanco Clara, Menendez Rosa, Verdejo Raquel, Lopez-Manchado Miguel A
Instituto Nacional del Carbón, INCAR-CSIC, Apartado 73, 33080 Oviedo, Spain.
Instituto de Ciencia y Tecnología de Polímeros, ICTP-CSIC, 28006 Madrid, Spain.
Polymers (Basel). 2019 Mar 8;11(3):449. doi: 10.3390/polym11030449.
Multifunctional elastomer nanocomposites have been applied in several high-tech fields. The design of materials with tailored properties capable of tuning their performance is a topical challenge. Here, we demonstrate that it is possible to modulate the mechanical and transport properties of silicone rubber nanocomposites by controlling the structure, chemical composition and morphology of the graphene material. Intrinsic graphene properties, such as remaining oxygen groups, specific surface area, and aspect ratio, among others, have a profound effect on the final properties of the nanocomposite. Thus, the thermal conductivity benefits from larger filler size and high aromatic restoration. Whereas mechanical properties and electrical conductivity require a proper balance between filler/polymer matrix interaction and a partial aromatic restoration.
多功能弹性体纳米复合材料已应用于多个高科技领域。设计具有可调节性能的定制材料是一个热门挑战。在此,我们证明通过控制石墨烯材料的结构、化学成分和形态,可以调节硅橡胶纳米复合材料的力学和传输性能。石墨烯的固有特性,如残留氧基团、比表面积和长径比等,对纳米复合材料的最终性能有深远影响。因此,热导率受益于更大的填料尺寸和高芳构化程度。而机械性能和电导率则需要在填料/聚合物基体相互作用和部分芳构化之间取得适当平衡。