Akinyi Caroline, Iroh Jude O
Department of Materials Science and Engineering, University of Cincinnati, 2600 Clifton Ave., Cincinnati, OH 45221, USA.
Polymers (Basel). 2023 Jan 6;15(2):299. doi: 10.3390/polym15020299.
Polyimide matrix nanocomposites have gained more attention in recent years due to their high thermal stability, good interfacial bonding, light weight, and good wear resistance and corrosion, factors that make them find great applications in the field of aerospace and advanced equipment. Many advancements have been made in improving the thermal, mechanical, and wear properties of polyimide nanocomposites. The use of nanofillers such as carbon nanotubes, graphene, graphene oxide, clay, and alumina has been studied. Some challenges with nanofillers are dispersion in the polymer matrix and interfacial adhesion; this has led to surface modification of the fillers. In this study, the interaction between clay and graphene to enhance the thermal and thermal-oxidative stability of a nanocomposite was studied. A polyimide/graphene nanocomposite containing ~12.48 vol.% graphene was used as the base nanocomposite, into which varying amounts of clay were added (0.45-9 vol.% clay). Thermogravimetric studies of the nitrogen and air atmospheres showed an improvement in thermal decomposition temperature by up to 50 °C. The presence of both fillers leads to increased restriction in the mobility of polymer chains, and thus assists in char formation. It was observed that the presence of clay led to higher decomposition temperatures of the char formed in air atmosphere (up to 80 °C higher). This led to the conclusion that clay interacts with graphene in a synergistic manner, hence improving the overall stability of the polyimide/graphene/clay nanocomposites.
近年来,聚酰亚胺基纳米复合材料因其高热稳定性、良好的界面结合力、轻质以及优异的耐磨性和耐腐蚀性而备受关注,这些因素使其在航空航天和先进设备领域有广泛应用。在改善聚酰亚胺纳米复合材料的热性能、机械性能和耐磨性能方面已经取得了许多进展。人们研究了使用碳纳米管、石墨烯、氧化石墨烯、粘土和氧化铝等纳米填料。纳米填料存在一些挑战,如在聚合物基体中的分散和界面粘附性;这导致了对填料进行表面改性。在本研究中,研究了粘土与石墨烯之间的相互作用以提高纳米复合材料的热稳定性和热氧化稳定性。以含有约12.48体积%石墨烯的聚酰亚胺/石墨烯纳米复合材料作为基础纳米复合材料,向其中添加不同量的粘土(0.45 - 9体积%粘土)。在氮气和空气气氛下的热重分析研究表明热分解温度提高了高达50℃。两种填料的存在导致聚合物链迁移率的限制增加,从而有助于形成炭。观察到粘土的存在导致在空气气氛中形成的炭的分解温度更高(高达80℃)。由此得出结论,粘土与石墨烯以协同方式相互作用,从而提高了聚酰亚胺/石墨烯/粘土纳米复合材料的整体稳定性。